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¿Nuevo en prompts, instrucciones de sistema, ventanas de contexto, tokens? Explicamos cada término mientras navegas, en lenguaje claro. Las mismas páginas, con la ayuda incorporada.

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Ranking de IA

Qué modelo lidera, en general y por categoría. Estos son los benchmarks públicos en los que se basan los gráficos que ves en YouTube y X. No publicamos puntuaciones propias: cada número pertenece al benchmark que lo produjo, registrado en una fecha y con crédito a la fuente.

Overall, qué mide esto: Human preference on open-ended chat.

Real people are shown the same prompt answered by two anonymous models side by side and vote for the better answer. Millions of these blind head-to-head votes are fed into a Bradley-Terry statistical model (the successor to the Elo system it started with) which converts win/loss pairs into a single rating per model. A higher rating means people picked that model more often against strong opposition. This snapshot uses the 'style control' variant, which is the site's default: it statistically adjusts for answer length and formatting so a model cannot climb simply by writing longer, prettier replies.

Limitaciones: It measures which answer people LIKE, not which answer is CORRECT - a confident, well-written wrong answer can still win a vote. Voters are self-selected volunteers rather than a representative sample, prompts skew toward what that crowd chooses to type, and models with few votes have wide confidence intervals (ci_low/ci_high) that often overlap the models ranked above and below them. Treat small rank gaps as ties.

Fuente: LMArena (formerly LMSYS Chatbot Arena) ↗ · publicado 2026-08-11 · datos subyacentes ↗ · Dataset released under Creative Commons Attribution 4.0 (CC BY 4.0). Reuse is permitted with attribution - credit LMArena and link to the leaderboard.

# Modelo Organización Arena score (human preference)
1 claude-fable-5 Anthropic 1506 95% CI 1501 to 1512 21,304 votes
2 claude-opus-4-6-thinking Anthropic 1505 95% CI 1501 to 1508 72,425 votes
3 claude-opus-4-7-thinking Anthropic 1502 95% CI 1498 to 1506 60,222 votes
4 muse-spark-1.2 (xHigh) Meta 1498 95% CI 1488 to 1509 3,278 votes
5 claude-opus-4-6 Anthropic 1498 95% CI 1494 to 1501 76,386 votes
6 claude-opus-5-high Anthropic 1494 95% CI 1489 to 1499 19,498 votes
7 claude-opus-4-7 Anthropic 1494 95% CI 1490 to 1498 61,308 votes
8 claude-opus-5-max Anthropic 1490 95% CI 1483 to 1497 9,419 votes
9 qwen3.8-max Alibaba 1490 95% CI 1482 to 1498 6,789 votes
10 muse-spark-1.1 Meta 1489 95% CI 1483 to 1494 16,648 votes
11 muse-spark Meta 1488 95% CI 1482 to 1494 13,600 votes
12 kimi-k3-max Moonshot AI 1487 95% CI 1481 to 1493 11,762 votes
13 gemini-3.1-pro-preview Google 1486 95% CI 1483 to 1490 94,814 votes
14 gemini-3-pro Google 1486 95% CI 1482 to 1489 41,509 votes
15 gemini-3.6-flash Google 1484 95% CI 1478 to 1490 13,559 votes
16 gpt-5.5-high OpenAI 1482 95% CI 1477 to 1486 55,210 votes
17 claude-opus-4-8-thinking Anthropic 1481 95% CI 1477 to 1486 40,409 votes
18 gpt-5.6-sol-xhigh OpenAI 1481 95% CI 1475 to 1487 15,304 votes
19 gemini-3.5-flash-high Google 1477 95% CI 1473 to 1482 25,613 votes
20 gpt-5.5 OpenAI 1477 95% CI 1473 to 1481 56,513 votes

Las barras se escalan según el rango visible para que las diferencias pequeñas sean legibles. No empiezan en cero. Cuando los intervalos de confianza se solapan, los modelos están empatados estadísticamente: lee el grupo superior como un grupo, no como un orden estricto.

Cómo interpretar estos datos y por qué difieren

LMArena (formerly LMSYS Chatbot Arena)

Real people are shown the same prompt answered by two anonymous models side by side and vote for the better answer. Millions of these blind head-to-head votes are fed into a Bradley-Terry statistical model (the successor to the Elo system it started with) which converts win/loss pairs into a single rating per model. A higher rating means people picked that model more often against strong opposition. This snapshot uses the 'style control' variant, which is the site's default: it statistically adjusts for answer length and formatting so a model cannot climb simply by writing longer, prettier replies.

Atención con: It measures which answer people LIKE, not which answer is CORRECT - a confident, well-written wrong answer can still win a vote. Voters are self-selected volunteers rather than a representative sample, prompts skew toward what that crowd chooses to type, and models with few votes have wide confidence intervals (ci_low/ci_high) that often overlap the models ranked above and below them. Treat small rank gaps as ties.

Publicado 2026-08-11 · ranking en tiempo real ↗ · Data: LMArena leaderboard dataset (CC BY 4.0).

LiveBench

A fixed set of test questions with objectively verifiable answers is run against each model and scored automatically against ground truth - no human voting and no AI judge, so the score is repeatable. This release spans 23 tasks grouped into 7 categories. Each category score is the average of its tasks, and the headline 'global average' is the average of the 7 category scores, so every category counts equally regardless of how many tasks it contains. Scores are percentages: 100 is perfect.

Atención con: Contamination-LIMITED, not contamination-proof: questions are refreshed from recent sources to reduce the chance a model simply memorised them during training, but that cannot be guaranteed. Scores reflect only these 23 tasks - they say nothing about tone, safety, speed or cost. Many entries are effort/thinking variants of the same underlying model (model_id shows the exact configuration tested), and a variant given more reasoning budget will usually outscore the cheaper default that most people actually use.

Publicado · ranking en tiempo real ↗ · Data: LiveBench 2026-06-25 release, livebench.ai.

Dos unidades distintas, nunca en un mismo gráfico.

Una valoración de preferencia humana y una puntuación de aciertos no pueden compartir un mismo eje, por eso esta página nunca los mezcla en una misma tabla. Un modelo puede liderar una métrica sin liderar la otra, y eso es una señal real sobre sus fortalezas, no una contradicción: una pregunta es "¿qué respuesta prefirió la gente?", la otra es "¿qué respuesta era correcta?".

Lo que esta página no hará

No te dirá qué IA usar. El líder del benchmark a menudo no es la herramienta adecuada para tu trabajo; el precio, la disponibilidad, las integraciones, la longitud del contexto y qué tan bien sigue TUS instrucciones suelen importar más que uno o dos puntos de puntuación. ¿Qué AI debería usar? →

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