Dontopedia

SearchResult

From Dontopedia, the open, paraconsistent wiki. (Last updated 2026-06-10.)

SearchResult has 282 facts recorded in Dontopedia across 69 references, with 34 live disagreements.

282 facts·166 predicates·69 sources·34 in dispute

Mostly:rdf:type(14), has query(10), has field(9)

Maturity scale raw canonical shape-checked rule-derived certified

Rdf:typein disputerdf:type

Has Queryin disputehasQuery

  • resume schema crawler[1]all time · Part 3
  • select * from decision_logs order by timestamp desc limit 20[4]all time · Part 737
  • Megawatts Discord bot architecture advanced features code quality[5]all time · Part 853
  • discord bot project analysis architecture code quality performance security[6]all time · Part 854
  • "Thomas Horan" "Cattle Creek" Aboriginal[20]all time · 09 Genes Apexpots Com Search 18daa1ed8857
  • Thornborough Kingsborough Wason Zillman McGuire Aboriginal children Reynolds[21]all time · 07 Genes Apexpots Com Search Ce9692b24cda
  • "James Rolls" Kingsborough Reynolds[24]all time · 13 Genes Apexpots Com Search 1a726df343df
  • "Warden Mowbray" Thornborough Reynolds[25]all time · 07 Genes Apexpots Com Search 04bd9c107ede
  • "Paul Reynolds" "Mowbray State School"[26]all time · 10 Genes Apexpots Com Search F1837e815e3b
  • "Mowbray River State School" "Paul Reynolds"[29]all time · 18 Genes Apexpots Com Search Be7cfe622781

Inbound mentions (53)

Other subjects in dontopedia point AT this entity as a value. These are inverse relationships — e.g. "X motherOf this subject" — and answer questions the forward facts can't. Grouped by predicate.

affectsAffects(4)

mentionedInQueryMentioned in Query(4)

rdf:typeRdf:type(4)

belongsToBelongs to(3)

belongsToModelBelongs to Model(3)

hasResultHas Result(3)

returnsReturns(3)

itemTypeItem Type(2)

producedResultProduced Result(2)

announcesResultAnnounces Result(1)

containsContains(1)

containsClassContains Class(1)

containsResultContains Result(1)

countGreaterThanZeroCount Greater Than Zero(1)

existsExists(1)

hasJsonContentHas Json Content(1)

hasResultSectionHas Result Section(1)

holdsHolds(1)

hostsSearchHosts Search(1)

isQueryOfIs Query of(1)

listItemTypeList Item Type(1)

outputsOutputs(1)

performsNegativeReportPerforms Negative Report(1)

performsSearchActionPerforms Search Action(1)

performsSpeechActAnnouncementPerforms Speech Act Announcement(1)

printsPrints(1)

producesResultProduces Result(1)

providesJsonOutputProvides Json Output(1)

reportsLeadReports Lead(1)

reportsObservationReports Observation(1)

returnedResultReturned Result(1)

returnsResultReturns Result(1)

savedAsSaved As(1)

servedAsSourceServed As Source(1)

Other facts (252)

The long tail: predicates that appear too rarely to warrant their own section. Filter or scroll to find a specific one. Each row links to its source.

252 facts
PredicateValueRef
Has FieldId Field[63]
Has FieldTitle Field[63]
Has FieldContent Field[63]
Has FieldId Field[64]
Has FieldTitle Field[64]
Has FieldContent Field[64]
Has FieldId Field[65]
Has FieldTitle Field[65]
Has FieldContent Field[65]
Has Successtrue[4]
Has Successtrue[7]
Has Successtrue[10]
Has Successtrue[11]
Has Successtrue[12]
Has Successtrue[15]
Has Successtrue[16]
Has Matches[][20]
Has Matches[][21]
Has Matches[][23]
Has Matches[][24]
Has Matches[][25]
Has Matches[][26]
Has Matches[][34]
Confirms No ConnectionMary[28]
Confirms No ConnectionDinah[28]
Confirms No ConnectionMowbray[28]
Confirms No ConnectionNellie[28]
Confirms No ConnectionReynolds[28]
Lacks Connection toYarrabah[43]
Lacks Connection toOpium[43]
Lacks Connection toCooktown[43]
Lacks Connection toChinese Employers[43]
Lacks Connection toAboriginal Workers[43]
Has Total Available75[10]
Has Total Available116[11]
Has Total Available19[12]
Has Total Available20[16]
Has Result Count10[10]
Has Result Count10[11]
Has Result Count10[12]
Has Result Count10[16]
Has Categorynull[10]
Has Categorynull[11]
Has Categorynull[12]
Has Categorynull[16]
Is Negative forDirect Item Id[40]
Is Negative forPrv Location[40]
Is Negative forQsa Catalogue Page[40]
Is Negative forTarget Reynolds[43]
Inherits FromBase Model[63]
Inherits FromBase Model[64]
Inherits FromBase Model[65]
Inherits FromPydantic Model[65]
Has Match Count5[1]
Has Match Count5[5]
Has Match Count3[6]
Has SourceDuckDuckGo[4]
Has SourceDuckduckgo[15]
Has SourceDuckDuckGo[54]
Has Num Results0[4]
Has Num Results0[7]
Has Num Results0[15]
Contains ToolTpmjs Tools Stacktrace Parse Tool[5]
Contains ToolTpmjs Discord Read Tool[5]
Contains ToolTpmjs Discord Post Tool[5]
Returns ToolsDiscord Post Tool[6]
Returns ToolsSitemap Read Tool[6]
Returns ToolsDiscord Read Tool[6]
Has Authenticatedtrue[10]
Has Authenticatedtrue[11]
Has Authenticatedtrue[12]
Has Zero Matches0[21]
Has Zero MatchesZero[25]
Has Zero Matches0[34]
Indicates No Evidence forHugh Wason[22]
Indicates No Evidence forPolly[22]
Indicates No Evidence forUnion Camp[22]
Returns No ResultsEmpty Matches[22]
Returns No ResultsMowbray River State School[29]
Returns No ResultsPaul Reynolds[29]
Indicates Absence of RecordsTrue[23]
Indicates Absence of RecordsQueried Names[27]
Indicates Absence of RecordsQuery String[28]
Implies No Connection FoundJames Rolls[24]
Implies No Connection FoundKingsborough[24]
Implies No Connection FoundReynolds[24]
Failed to MatchNancy Humphrys[27]
Failed to MatchDinah[27]
Failed to MatchCharles Edward Reynolds[27]
States FactHislops Are Settlers[36]
States FactHislops Grew Tropical Fruits[36]
States FactHislops Grew Sugar Cane[36]
ContainsVector Indices[48]
ContainsDistance Measurements[48]
ContainsDistances[62]
Has Results[][4]
Has ResultsSearch Results Array[8]
Indicates No ResultsTrue[4]
Indicates No Resultsnull[7]
Has Results Array[][7]

Timeline

Timeline axis is valid_time — when each source says the fact was true in the world, not when Dontopedia learned about it. Retracted rows are kept for provenance; coloured stripes indicate the context kind.

hasMatchCountblah/jsonresume/part-3
5
listsToolsblah/jsonresume/part-3
ex:tool-list
hasQueryblah/jsonresume/part-3
resume schema crawler
lacksSpecificityblah/omega/part-272
ex:dimms-in-lxc
didNotFindblah/omega/part-272
ex:specific-info
isNegativeblah/omega/part-288
couldn't find
hasResultsblah/omega/part-737
[]
hasQueryblah/omega/part-737
select * from decision_logs order by timestamp desc limit 20
indicatesNoResultsblah/omega/part-737
ex:true
hasSourceblah/omega/part-737
DuckDuckGo
hasNumResultsblah/omega/part-737
0
hasSuccessblah/omega/part-737
true
hasFiveMatchesblah/omega/part-853
ex:true
hasMatchCountblah/omega/part-853
5
containsTruncatedToolblah/omega/part-853
ex:truncated-tool
containsToolblah/omega/part-853
ex:tpmjs-tools-stacktrace-parse-tool
containsToolblah/omega/part-853
ex:tpmjs-discord-read-tool
hasQueryblah/omega/part-853
Megawatts Discord bot architecture advanced features code quality
containsToolblah/omega/part-853
ex:tpmjs-discord-post-tool
ranksToolsByRelevanceblah/omega/part-853
ex:search-query
returnsToolsblah/omega/part-854
ex:discord-post-tool
hasQueryblah/omega/part-854
discord bot project analysis architecture code quality performance security
returnsToolsblah/omega/part-854
ex:sitemap-read-tool
returnsToolsblah/omega/part-854
ex:discord-read-tool
referencesDiscordEcosystemblah/omega/part-854
ex:true
hasMatchCountblah/omega/part-854
3
hasSuccessblah/omega/part-981
true
indicatesNoResultsblah/omega/part-981
null
hasNumResultsblah/omega/part-981
0
sourcedFromblah/omega/part-981
ex:duckduckgo
hasResultsArrayblah/omega/part-981
[]
contrastsWithblah/omega/part-981
ex:later-instructions
hasResultsblah/omega/part-1109
ex:search-results-array
resultCountblah/omega/part-1109
10
successblah/omega/part-1109
true
totalAvailableblah/omega/part-1109
19
categoryblah/omega/part-1109
null
queryblah/omega/part-1109
hllm stats
authenticatedblah/omega/part-1109
true
precedesblah/omega/part-1121
ex:execute-result
containsResultsblah/omega/part-1132
ex:results-array
hasQueryEchoblah/omega/part-1132
create memory
hasSuccessblah/omega/part-1132
true
hasTotalAvailableblah/omega/part-1132
75
hasResultCountblah/omega/part-1132
10
precedesblah/omega/part-1132
ex:execute-result
hasCategoryblah/omega/part-1132
null
hasAuthenticatedblah/omega/part-1132
true
knownToHaveblah/omega/part-1132
10
hasResultCountblah/omega/part-1138
10
repeatsQueryblah/omega/part-1138
postgresql list tables
matchesUserQueryblah/omega/part-1138
ex:postgresql-list-tables-query
isTruncatedblah/omega/part-1138
ex:results-array
hasAuthenticatedblah/omega/part-1138
true
hasCategoryblah/omega/part-1138
null
hasTotalAvailableblah/omega/part-1138
116
hasSuccessblah/omega/part-1138
true
containsResultsblah/omega/part-1149
ex:results-array
hasSuccessblah/omega/part-1149
true
hasResultCountblah/omega/part-1149
10
hasAuthenticatedblah/omega/part-1149
true
hasCategoryblah/omega/part-1149
null
presupposesAuthenticationblah/omega/part-1149
true
matchesUserQueryblah/omega/part-1149
ex:message-2026-02-20-10-15
reusesQueryblah/omega/part-1149
models evals
hasTotalAvailableblah/omega/part-1149
19
indicatesPartialOutputblah/omega/part-1149
1/2
succeededblah/omega/part-1162
true
usedSourceblah/omega/part-1162
ex:duckduckgo
returnedEmptyResultsblah/omega/part-1162
ex:results
returnedNumResultsblah/omega/part-1162
0
categoryValueblah/omega/part-1221
null
certifiesSuccessblah/omega/part-1221
true
hasResultsArrayblah/omega/part-1221
ex:search-results-array
presupposesMoreResultsExistblah/omega/part-1221
true
queryEchoedblah/omega/part-1221
sshmail agent ssh2 typescript
successStatusblah/omega/part-1221
true
resultCountblah/omega/part-1221
10
totalAvailableblah/omega/part-1221
20
authenticatedStatusblah/omega/part-1221
true
impliesNoResultsFoundblah/omega/part-995
ex:uncloseai-tts-examples
hasNumResultsblah/omega/part-995
0
hasSourceblah/omega/part-995
ex:duckduckgo
hasSuccessblah/omega/part-995
true
certifiedAsTrueblah/omega/part-995
true
hasEmptyResultsblah/omega/part-995
[]
evaluatesAsSuccessfulblah/omega/part-1220
true
isAuthenticatedblah/omega/part-1220
true
hasCategoryblah/omega/part-1220
null
impliesMoreResultsExistblah/omega/part-1220
10
hasTotalAvailableblah/omega/part-1220
20
hasResultCountblah/omega/part-1220
10
containsResultsArrayblah/omega/part-1220
ex:results-array
repeatsQueryblah/omega/part-1220
sshmail agent
hasSuccessblah/omega/part-1220
true
confirmsAuthenticationblah/omega/part-1220
true
evidencesTenResultsblah/omega/part-1220
10
knownToBeSuccessfulblah/omega/part-1220
true
noTidingstrove-cooktown/beche-de-mer
ex:kate-kearney
evaluatedAsHighlySatisfactorytrove-cooktown/north-shore-cooktown
ex:friends-of-sea-breeze-crew
wasHighlySatisfactorytrove-cooktown/north-shore-cooktown
ex:friends-of-sea-breeze-crew
foundOnlytrove-cooktown/reynolds
Wilson's hat
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
[]
impliesAbsenceOfRecordsrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
ex:thomas-horan-cattle-creek-aboriginal-link
indicatesNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
ex:cattle-creek
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
"Thomas Horan" "Cattle Creek" Aboriginal
indicatesNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
ex:thomas-horan
presupposesGenealogyDatabaserosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
ex:genes-apexpots-com
evaluatesAsLowEvidencerosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
ex:evidence-lead-only
isSourceTextrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
{"matches":[],"q":"\"Thomas Horan\" \"Cattle Creek\" Aboriginal"}
returnsNoMatchesrosie-reynolds-massacre-connection/metadata-reingest/09-genes-apexpots-com-search-18daa1ed8857
true
hasZeroMatchesrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
0
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
Thornborough Kingsborough Wason Zillman McGuire Aboriginal children Reynolds
contrastsWithExpectationrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
ex:matches
indicatesNoGenealogicalRecordsrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
ex:search-query
confirmsAbsencerosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
ex:genealogical-matches
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-ce9692b24cda
[]
hedgesFindingsrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
ex:no-results
hasMatchesCountrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
0
hasQueryStringrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
Hugh Wason Union Camp Polly children
indicatesNoEvidenceForrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
ex:hugh-wason
indicatesNoEvidenceForrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
ex:polly
indicatesNoEvidenceForrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
ex:union-camp
returnsNoResultsrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-79c817963d9f
ex:empty-matches
performedWithQueryrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
"Cattle Creek" 1881 "Native Mounted Police" Hodgkinson
indicatesAbsenceOfRecordsrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
ex:true
reportsFailurerosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
ex:true
confirmsNoMatchesWithCertaintyrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
ex:true
foundZeroMatchesrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
0
isUnsuccessfulrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
ex:true
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/08-genes-apexpots-com-search-686b4472f4be
[]
performedOnSiterosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
ex:13-genes-apexpots-com
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
[]
foundNoMatchesrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
ex:search-query
impliesNoConnectionFoundrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
ex:james-rolls
impliesNoConnectionFoundrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
ex:kingsborough
impliesNoConnectionFoundrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
ex:reynolds
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
"James Rolls" Kingsborough Reynolds
assertsZeroResultsrosie-reynolds-massacre-connection/metadata-reingest/13-genes-apexpots-com-search-1a726df343df
0
teleologicalPurposerosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
genealogy investigation
performedOnSiterosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:genes-apexpots-com
presupposesRelevanceOfrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:warden-mowbray
resultsInrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:no-matches
assertsAbsenceOfrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:genealogical-matches
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
"Warden Mowbray" Thornborough Reynolds
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
[]
evaluatesAsUnsuccessfulrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:zero-matches
hasZeroMatchesrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-04bd9c107ede
ex:zero
hasMatchesrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
[]
providesNoEvidencerosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
ex:paul-reynolds
matchesCountrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
0
yieldedNoResultsrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
ex:search-query
impliesAbsenceOfRecordsrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
ex:paul-reynolds
providesNoEvidencerosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
ex:mowbray-state-school
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
"Paul Reynolds" "Mowbray State School"
isSourceTextOfrosie-reynolds-massacre-connection/metadata-reingest/10-genes-apexpots-com-search-f1837e815e3b
ex:10-genes-apexpots-com-search
indicatesAbsenceOfRecordsrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-e6f10891761b
ex:queried-names
failedToMatchrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-e6f10891761b
ex:nancy-humphrys
failedToMatchrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-e6f10891761b
ex:dinah
failedToMatchrosie-reynolds-massacre-connection/metadata-reingest/07-genes-apexpots-com-search-e6f10891761b
ex:charles-edward-reynolds
confirmsNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:mary
indicatesAbsenceOfRecordsrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:query-string
confirmsNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:dinah
confirmsNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:mowbray
confirmsNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:nellie
confirmsNoConnectionrosie-reynolds-massacre-connection/metadata-reingest/06-genes-apexpots-com-search-f8d0bbdf296e
ex:reynolds
returnsNoResultsrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
ex:mowbray-river-state-school
confirmsNoKnownLinkrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
ex:mowbray-river-state-school
returnsNoResultsrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
ex:paul-reynolds
demonstratesAbsenceOfEvidencerosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
ex:paul-reynolds
isSearchNumberrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
18
implicatesNoRecordsrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
ex:paul-reynolds
hasQueryrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
"Mowbray River State School" "Paul Reynolds"
performedOnWebsiterosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
genes.apexpots.com
hasMatchesCountrosie-reynolds-massacre-connection/metadata-reingest/18-genes-apexpots-com-search-be7cfe622781
0
showsAdditionalRecordsrosie-reynolds-massacre-connection/metadata-reingest/15-www-qld-gov-au-law-births-deaths-marriages-and-divorces-family-history-research-research-codes-56f6810dd582
ex:person-searched
bookmarkablerosie-reynolds-massacre-connection/metadata-reingest/15-www-qld-gov-au-law-births-deaths-marriages-and-divorces-family-history-research-research-codes-56f6810dd582
ex:page
filtersByMentionrosie-reynolds-massacre-connection/archive-text/beta-fromthepage-com-display-read-all-works-51fb0544d3db
ex:thornborough-queensland
evaluatedAsUnsuccessfulrosie-reynolds-massacre-connection/fromthepage-itm847424-later-ai-text-crawl-ui-pages-103-105-exact-mowbray-4104-terms
ex:ui-pages-103-105
hasNumberOfMatchesrosie-reynolds-massacre-connection/genes-search-theresa-mary-reynolds-malone
0
hasQueryParamrosie-reynolds-massacre-connection/genes-search-theresa-mary-reynolds-malone
Theresa Mary Reynolds Malone
returnedEmptyMatchesrosie-reynolds-massacre-connection/genes-search-theresa-mary-reynolds-malone
ex:theresa-mary-reynolds-malone
indicatesAbsencerosie-reynolds-massacre-connection/genes-search-theresa-mary-reynolds-malone
ex:theresa-mary-reynolds-malone
demonstratesNonExistenceInDbrosie-reynolds-massacre-connection/genes-search-theresa-mary-reynolds-malone
ex:theresa-mary-reynolds-malone
hasQueryParamQrosie-reynolds-massacre-connection/genes-search-patrick-reynolds-port-douglas
Patrick Reynolds Port Douglas
hasZeroMatchesrosie-reynolds-massacre-connection/genes-search-patrick-reynolds-port-douglas
0
hasMatchesrosie-reynolds-massacre-connection/genes-search-patrick-reynolds-port-douglas
[]
triggeredByQueryrosie-reynolds-massacre-connection/web-search-snippet-roth-hislop-lizzie-johnstone-qsa-a58752-2026-05-07
Lizzie Johnstone A/58752
exposedrosie-reynolds-massacre-connection/web-search-snippet-roth-hislop-lizzie-johnstone-qsa-a58752-2026-05-07
ex:blocked-mirror
statesFactrosie-reynolds-massacre-connection/search-snippet-hislop-wyalla-scholarship-citation-2026-05-07
ex:hislops-are-settlers
statesFactrosie-reynolds-massacre-connection/search-snippet-hislop-wyalla-scholarship-citation-2026-05-07
ex:hislops-grew-tropical-fruits
summarizesContentOfrosie-reynolds-massacre-connection/search-snippet-hislop-wyalla-scholarship-citation-2026-05-07
ex:2025-tandf-article
isForArticlerosie-reynolds-massacre-connection/search-snippet-hislop-wyalla-scholarship-citation-2026-05-07
ex:2025-tandf-article
statesFactrosie-reynolds-massacre-connection/search-snippet-hislop-wyalla-scholarship-citation-2026-05-07
ex:hislops-grew-sugar-cane
fromWebsiterosie-reynolds-massacre-connection/search-result-lead-gravestonephotos-walter-paul-reynolds-mt-gravatt
ex:gravestonephotos-com
combinedWithrosie-reynolds-massacre-connection/annie-weazel-parallel-employment-desertion-yarrabah-comparator
ex:archived-source-text
isKnownrosie-reynolds-massacre-connection/hom-b64-item-17943-direct-qsa-search-negative
ex:cifhs-home-office-metadata-source
performedInrosie-reynolds-massacre-connection/a4742-1936-item-id-direct-catalogue-search-negative
ex:generic-web-search
isNegativeForrosie-reynolds-massacre-connection/a4742-1936-item-id-direct-catalogue-search-negative
ex:direct-item-id
isNegativeForrosie-reynolds-massacre-connection/a4742-1936-item-id-direct-catalogue-search-negative
ex:prv-location

References (69)

69 references
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  40. ctx:genes/rosie-reynolds-massacre-connection/a4742-1936-item-id-direct-catalogue-search-negative
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  44. ctx:genes/rosie-reynolds-massacre-connection/daintree-chinese-settlement-official-heritage-context
  45. [45]Origin Claims1 fact
    ctx:_quarantine/kloey-yap-family-origins | loop 73 | Kloe Yap disambiguation search-state record | identity candidate only; no family/origin claims
  46. ctx:genes/rosie-reynolds-massacre-connection/downloaded-archive/projectdocument-8b67535c1f56
  47. ctx:genes/rosie-reynolds-massacre-connection/cambridge-pdf-archival-country-counterclaims-figaro-not-online-cd73306ae08c
  48. [48]Beam3 facts
    ctx:claims/beam
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      3. **Prediction Decoding**: After making predictions, we use `inverse_transform` on the `LabelEncoder` to convert the numerical predictions back to their original categorical labels. ### Additional Improvements: - **Feature Engineering**:
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      - **Customizing Colors and Formats**: Adjust the `cmap` parameter in `sns.heatmap` to change the color scheme, and use `fmt` to control the formatting of the annotations. This enhanced dashboard will give you a clear visual representation
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      but I need it to be more complex and handle multiple modules, and also include error handling for missing modules ->-> 2,28 [Turn 311] Assistant: Designing a modular architecture in Python involves organizing your code into separate module
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      Would you like to proceed with a specific evaluation or comparison? Please specify the technologies or areas you are interested in, and I will provide a detailed analysis with appropriate references. [Turn 320] User: Sure thing! Let's focu
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      # Directory containing the documents directory = '/path/to/documents' # List to store document information documents = [] # Loop through each file in the directory for filename in os.listdir(directory): filepath = os.path.join(directo
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      import dash_html_components as html from dash.dependencies import Input, Output app = dash.Dash(__name__) app.layout = html.Div([ # Add dashboard components here ]) # Example usage: if __name__ == '__main__': app.run_server() ```
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      I'd like to expand on this to include more features, such as the ability to add and remove tasks, and to save the tasks to a file. Can you help me implement this? ->-> 2,31 [Turn 317] Assistant: Certainly! Let's expand on your basic task p
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      ### Enhanced Database Design and Query Optimization #### Step 1: Establish Connections to Multiple Databases We'll use a configuration file to manage multiple database connections and a context manager to handle connections and cursors pr
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      print(f"An error occurred: {e}") # Example usage num_instances = 10 gcp_price = 0.08 aws_price = 0.10 gcp_cost, aws_cost = calculate_costs(num_instances, gcp_price, aws_price) print(f"GCP cost: ${gcp_cost:.2f}, AWS cost: ${aws_cos
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      [Turn 307] Assistant: Handling a large volume of data, such as 2 million documents, efficiently using Apache Beam in Python requires careful consideration of data transformations, error handling, and optimization techniques. Below is an enh
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      - Implemented a function `execute_query` to execute SQL queries on specified databases. - Demonstrated fetching data from two different databases. 3. **Creating Indexes**: - Provided an example SQL command to create an index on a
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      - Wrapped the analysis code in a try-except block to catch and handle any exceptions that may occur during data analysis. ### Visualization Libraries - **Matplotlib**: Used for basic plotting. - **Seaborn**: Used for enhanced statistic
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      | "Batch Elements" >> BatchElements(min_batch_size=1000, max_batch_size=10000) ) # Error handling def safe_process(element): try: # Perform complex processing here processed_element =
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      - The function catches any exceptions that occur during the calculation and prints an error message. - If an error occurs, the function returns `None` for both `gcp_cost` and `aws_cost`. 5. **Example Usage**: - The example usage d
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      - We generate a random query vector and use `get_nns_by_vector` to find the nearest neighbors. The function returns the indices of the nearest neighbors and their distances. ### Output The output will be a tuple containing the indices
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      # Build the index t.build(10) # Query the index vec = np.random.rand(128).astype('float32') nearest_neighbors = t.get_nns_by_vector(vec, 10, include_distances=True) print(nearest_neighbors) ``` ->-> 2,25 [Turn 293] Assistant: Certainly!
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      from pika.adapters.blocking_connection import BlockingChannel from pika.spec import Basic def process_document(ch: BlockingChannel, method: Basic.Deliver, properties: BasicProperties, body: bytes): print(f"Processing document: {body}")
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      **Explanation**: By encoding sentences into dense vectors, SBERT can capture nuanced relationships between words and phrases. This leads to more precise and contextually relevant search results. For example, a query about "machine learning"
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      [Turn 291] Assistant: Monitoring tools are essential for tracking the performance and health of your system, especially when dealing with high throughput and complex architectures like microservices. Here are some recommended monitoring too
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      2. **Background Processing**: Use worker threads or background jobs to handle the embedding generation and index updates asynchronously. ### 4. **Versioning** Maintain multiple versions of the embeddings to handle updates gracefully. ###
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      - !Ref TargetGroup HealthCheckType: "EC2" HealthCheckGracePeriod: 300 ``` #### Launch Template Using AWS Launch Template: ```yaml Resources: LaunchTemplate: Type: "AWS::EC2::LaunchTemplate" Properties:
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      [Turn 153] Assistant: Great! Starting with the basic structure is a solid approach. It will allow you to gather and organize the initial interview results effectively. As you collect more data, you can always expand the structure to include
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      "Status": ["Pass", "Fail", "Pass", "Pass", "Fail"], "Details": ["Data encryption check passed.", "Access control check failed.", "Audit logs check passed.", "Data backup check passed.", "Secure data transmission check failed."] } d
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      app.run_server(debug=True) ``` ### Explanation 1. **Sample Data**: - Define a dictionary `compliance_data` with sample compliance status for each checkpoint. - Convert the dictionary to a DataFrame `df` using `pd.DataFrame`. 2.
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      Type: "AWS::ElasticLoadBalancingV2::LoadBalancer" Properties: Name: "my-load-balancer" Scheme: "internet-facing" Subnets: - !Ref PublicSubnet1 - !Ref PublicSubnet2 SecurityGroups: - !R
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      # Optionally, implement a retry mechanism here time.sleep(1) # Wait before retrying print('Requests sent:', requests_count) ``` ### Explanation 1. **Logging Setup**: Configured logging to capture timestamps, log levels,
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      - **Number of Bins**: Adjust the `bins` parameter to control the granularity of the histogram. More bins will provide finer detail, while fewer bins will provide a broader overview. - **Color and Edge Style**: Customize the color and edge s
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      - It iterates over each category in the order of priorities, checking if any of the keywords are present in the file content. - If a keyword is found, the corresponding category is added to `file_categories` and the loop breaks to sto
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      - `categories` is a dictionary where each key is a category name and the value is a list of keywords that indicate the file belongs to that category. 2. **Read and Categorize Files**: - The `categorize_files` function reads the conte
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      # Initialize an empty dictionary to store interview results interview_results = {} # Function to add interview results def add_interview_result(stakeholder_id, search_needs): if stakeholder_id in interview_results: interview_re
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      - **Compromise Solutions**: Propose a solution where users can save predefined dashboard layouts and switch between them. - **Incremental Improvements**: Plan to implement real-time customization in a future release after addressing t
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      - `idf` is calculated as the logarithm of the ratio of the total number of documents to the document frequency of the term. - The final score is computed using the BM25 formula. 4. **Parameter Tuning**: - `k1` and `b` are typicall
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      - Defined `make_request` to handle individual requests and include error handling. - Used `raise_for_status` to raise an exception for HTTP errors. 4. **Main Function**: - Created a list of URLs to request. - Used `httpx.AsyncC
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      Ensure you have the necessary libraries installed: ```bash pip install websockets ``` ### Code Implementation ```python import asyncio import concurrent.futures from collections import defaultdict, deque from threading import Thread cla
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      def retrieve(self, query): # Simplified retrieval logic: return documents containing the query word words = query.split() results = set() for word in words: results.update(self.index.get(word,
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      5. **Scalability**: Design the system to scale horizontally to handle increasing data volumes. ### Example Implementation Below is an example implementation using a WebSocket stream as the data source. This example uses `websockets` for r
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      - **Caching**: Implement caching mechanisms to reduce the number of API calls and improve response times. By following this enhanced code snippet, you can handle multiple API endpoints, rate limits, and ensure robust error handling and per
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      # Register the GDPR points gdpr_points = [ 'point1', 'point2', # Add other GDPR points here ] # Test the auditor with a sample implementation auditor = GDPRPointChecker(gdpr_points) result = auditor.audit() print(result) ``` #
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      - **Suggestion**: Ensure that you have a clear upgrade path for future versions. Consider documenting version changes and deprecation policies. 2. **HTTP Methods**: - **Current**: You are using `POST` for the search endpoint, which i
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      By setting up an Auto Scaling group with appropriate scaling policies and integrating it with a load balancer, you can dynamically adjust the number of Solr nodes based on real-time query volume. This ensures that your system can handle sud
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      --launch-template LaunchTemplateName=my-solr-launch-template \ --min-size 2 \ --max-size 10 \ --desired-capacity 4 \ --load-balancer-names my-load-balancer ``` 3. **Create Target Tracking Scaling Policy** ```
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      [Turn 1067] Assistant: Setting up autoscaling groups for Solr nodes based on real-time query volume involves several steps. You can use cloud provider services like AWS Auto Scaling or Kubernetes Horizontal Pod Autoscaler to dynamically adj
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      - **Tuning Cache Settings**: Adjust cache sizes and eviction policies to balance memory usage and performance. #### **Response Caching** - **Use Reverse Proxy Caching**: Tools like NGINX can cache responses to frequently requested queries,
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      [Turn 1065] Assistant: Ensuring that your system can handle sudden spikes in query volume without compromising latency involves several strategies, including scaling, caching, and optimizing your infrastructure. Here are some detailed steps
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      - **Create Collection**: Use the Solr admin UI or command line to create a collection with sharding and replication. ```sh bin/solr create -c my_collection -n data_driven_schema_configs -rf 2 -shards 3 ``` - **Explanati
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      3. **Evaluate Each Item**: Go through each item on the checklist and evaluate it thoroughly. Document your findings and any issues discovered. 4. **Calculate Coverage**: Summarize the coverage achieved for each aspect. Aim to cover at least
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      [Turn 1058] User: I'm working on refining my evaluation criteria for the RAG system, and I need help with creating a comprehensive checklist that covers 8 technology aspects. Can you provide a sample checklist that includes items like laten
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      - For each technology aspect, list common issues that might arise. For example: - **Latency**: High response times, inconsistent performance. - **Throughput**: Low query handling capacity, scalability bottlenecks. - **Secu
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      return jsonify({'error': 'Payload exceeds 5KB limit'}), 400 # Perform the search query # TODO: Implement the actual search logic here search_result = {} return jsonify(search_result) if __name__ == '__main
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      - Ensure that the API is secure by validating input and protecting against common vulnerabilities. ### Enhanced API Implementation Here's an enhanced version of your API code: ```python from flask import Flask, request, jsonify import
  51. ctx:claims/beam/cd357396-3d15-4187-a06d-464838aefe07
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      ### Using Quantization for Efficiency Quantization can further reduce the memory footprint and speed up the search process. FAISS supports various quantization techniques, such as PQ (Product Quantization). Here's an example using PQ: ``
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      vectors = np.random.rand(1000, 128).astype(np.float32) collection.insert([vectors]) # Flush data collection.flush() # Search query_vector = np.random.rand(1, 128).astype(np.float32) results = collection.search([query_vector], "embedding",
  53. ctx:claims/beam/131a150d-00ba-472b-bdc7-209aa22bc91d
  54. [54]9744 facts
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      [2026-01-28 12:13] uncloseai [bot]: **Sources:** - **Using Free LLM & Text To Speech Artificial Intelligence Service | uncloseai.com**: <https://uncloseai.com/> - **Terms of Use | uncloseai.com**: <https://uncloseai.com/terms-of-use.html> -
  55. [55]12271 fact
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      [2026-03-08 20:26] omega [bot]: Here are my current SSHMail DMs: - Maldoror: "you know nothing about life" (2026-03-08T19:57:45Z) - Maldoror: "i like fat dogs and skinnny cats" (2026-03-08T19:51:09Z) - Lisa: "omega — borderline tyrannical
  56. ctx:claims/beam/096f648d-55d2-45ec-8945-3f23e5f318f9
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      ss.search(f'search {i}') # get search speeds search_speeds = ss.get_search_speeds() # calculate 90th percentile search_speeds.sort() ninetieth_percentile = search_speeds[int(0.9 * len(search_speeds))] print(ninetieth_percentile) # s
  57. ctx:claims/beam/926f1488-328b-43c2-9fba-d5492a192351
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      FieldSchema(name="embedding", dtype=DataType.FLOAT_VECTOR, dim=128) ] schema = CollectionSchema(fields, "Document Embeddings") # Create the collection collection = Collection("document_embeddings", schema) ``` #### 3. Insert Vectors
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      - Adjust the search parameters like `efSearch` for `IndexHNSW` to balance between speed and accuracy. ### Example Implementation Here's an optimized version of your code using `IndexIVFPQ` and enabling multi-threading: ```python impor
  59. ctx:claims/beam/8c21f541-c703-4998-aae0-19638ef54326
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      faiss.omp_set_num_threads(8) # Adjust based on your CPU cores # Create a quantizer quantizer = faiss.IndexFlatL2(128) # Create an IVFPQ index nlist = 100 # Number of clusters M = 8 # Number of sub-quantizers nbits = 8 # Number of bits
  60. ctx:claims/beam/4856bdab-4a7e-4c2b-b720-7f145679293b
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      - **Batch Queries:** Group similar queries together and process them in batches to reduce overhead. - **Asynchronous Processing:** Use asynchronous processing to handle multiple queries concurrently. ### 5. Monitoring and Feedback #### Re
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      word_embeddings = KeyedVectors.load_word2vec_format('path/to/word2vec.txt', binary=False) def find_nearest_neighbor(embedding, word_embeddings): min_distance = float('inf') nearest_neighbor = None for word in word_embeddings.in
  62. ctx:claims/beam/2fcc4e7a-d497-4bfa-b889-84fb8a9dfe40
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      This service will aggregate results from both sparse and dense retrieval services. ```python from fastapi import FastAPI, HTTPException from pydantic import BaseModel import requests app = FastAPI() class SearchQuery(BaseModel): quer
  64. ctx:claims/beam/daf4bbd1-d90a-4b18-805a-01e7121471bb
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      from prometheus_client import start_http_server, Summary, Counter app = FastAPI() # Prometheus metrics REQUEST_TIME = Summary('request_processing_seconds', 'Time spent processing request') TOTAL_REQUESTS = Counter('total_requests', 'Total
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      'synonym_filter': { 'type': 'synonym', 'synonyms': ['bank,financial institution,river bank'] } } } } }) # Index the rewritten query rewritten_q
  69. ctx:claims/beam/dc43e263-ae12-4ebe-aaee-b46ef58b17d0
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      'settings': { 'analysis': { 'analyzer': { 'synonym_analyzer': { 'type': 'custom', 'tokenizer': 'standard', 'filter': ['synonym_filter']

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