See ammazzasentenze on Wiktionary
{
"etymology_templates": [
{
"args": {
"1": "ammazzare<t:to kill>",
"2": "sentenza<t:verdicts><pl:1>"
},
"expansion": "Verb-object compound, composed of ammazza (“to kill”) + sentenze (“verdicts”)",
"name": "it-verb-obj"
}
],
"etymology_text": "Verb-object compound, composed of ammazza (“to kill”) + sentenze (“verdicts”).",
"head_templates": [
{
"args": {
"inv": "1"
},
"expansion": "ammazzasentenze (invariable)",
"name": "it-adj"
}
],
"hyphenation": [
"am‧maz‧za‧sen‧tèn‧ze"
],
"lang": "Italian",
"lang_code": "it",
"pos": "adj",
"senses": [
{
"categories": [
{
"kind": "other",
"name": "Italian entries with incorrect language header",
"parents": [],
"source": "w"
},
{
"kind": "other",
"name": "Italian links with redundant wikilinks",
"parents": [],
"source": "w"
},
{
"kind": "other",
"name": "Italian verb-object compounds",
"parents": [],
"source": "w"
},
{
"kind": "other",
"name": "Pages with 1 entry",
"parents": [],
"source": "w"
},
{
"kind": "other",
"name": "Pages with entries",
"parents": [],
"source": "w"
},
{
"kind": "other",
"langcode": "it",
"name": "Law",
"orig": "it:Law",
"parents": [],
"source": "w"
}
],
"glosses": [
"describing a judge who has a reputation for finding notorious famous people not guilty"
],
"id": "en-ammazzasentenze-it-adj-NCeEJ~2E",
"links": [
[
"law",
"law#English"
],
[
"judge",
"judge"
],
[
"not guilty",
"not guilty"
]
],
"raw_glosses": [
"(informal, law) describing a judge who has a reputation for finding notorious famous people not guilty"
],
"tags": [
"informal",
"invariable"
],
"topics": [
"law"
]
}
],
"sounds": [
{
"ipa": "/amˌmat.t͡sa.senˈtɛn.t͡se/"
},
{
"rhymes": "-ɛntse"
}
],
"word": "ammazzasentenze"
}
{
"etymology_templates": [
{
"args": {
"1": "ammazzare<t:to kill>",
"2": "sentenza<t:verdicts><pl:1>"
},
"expansion": "Verb-object compound, composed of ammazza (“to kill”) + sentenze (“verdicts”)",
"name": "it-verb-obj"
}
],
"etymology_text": "Verb-object compound, composed of ammazza (“to kill”) + sentenze (“verdicts”).",
"head_templates": [
{
"args": {
"inv": "1"
},
"expansion": "ammazzasentenze (invariable)",
"name": "it-adj"
}
],
"hyphenation": [
"am‧maz‧za‧sen‧tèn‧ze"
],
"lang": "Italian",
"lang_code": "it",
"pos": "adj",
"senses": [
{
"categories": [
"Italian 6-syllable words",
"Italian adjectives",
"Italian entries with incorrect language header",
"Italian indeclinable adjectives",
"Italian informal terms",
"Italian lemmas",
"Italian links with redundant wikilinks",
"Italian terms with IPA pronunciation",
"Italian verb-object compounds",
"Pages with 1 entry",
"Pages with entries",
"Rhymes:Italian/ɛntse",
"Rhymes:Italian/ɛntse/6 syllables",
"it:Law"
],
"glosses": [
"describing a judge who has a reputation for finding notorious famous people not guilty"
],
"links": [
[
"law",
"law#English"
],
[
"judge",
"judge"
],
[
"not guilty",
"not guilty"
]
],
"raw_glosses": [
"(informal, law) describing a judge who has a reputation for finding notorious famous people not guilty"
],
"tags": [
"informal",
"invariable"
],
"topics": [
"law"
]
}
],
"sounds": [
{
"ipa": "/amˌmat.t͡sa.senˈtɛn.t͡se/"
},
{
"rhymes": "-ɛntse"
}
],
"word": "ammazzasentenze"
}
Download raw JSONL data for ammazzasentenze meaning in All languages combined (1.4kB)
This page is a part of the kaikki.org machine-readable All languages combined dictionary. This dictionary is based on structured data extracted on 2025-05-27 from the enwiktionary dump dated 2025-05-20 using wiktextract (a4e883e and f1c2b61). The data shown on this site has been post-processed and various details (e.g., extra categories) removed, some information disambiguated, and additional data merged from other sources. See the raw data download page for the unprocessed wiktextract data.
If you use this data in academic research, please cite Tatu Ylonen: Wiktextract: Wiktionary as Machine-Readable Structured Data, Proceedings of the 13th Conference on Language Resources and Evaluation (LREC), pp. 1317-1325, Marseille, 20-25 June 2022. Linking to the relevant page(s) under https://kaikki.org would also be greatly appreciated.