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Model comparison

GPT-5.6 Sol vs Qwen3.5-27B

Data verified

Head-to-head evidence from 15 shared benchmark results across 6 categories. Overall scores shown here use the public BenchAlign v5 ranking lane.

81.96/100
Margin
21.3pts
← winning
60.7/100
2 category wins1 category wins

Public leaderboard positions: GPT-5.6 Sol #3 (Supported); Qwen3.5-27B #45 (Supported). Intervals and evidence labels describe ranking uncertainty, not a guarantee for a specific workload.

Evidence parity. GPT-5.6 Sol and Qwen3.5-27B share 15 comparable benchmark results. 3 of 8 categories are comparable. 31 results are unique to GPT-5.6 Sol; 13 to Qwen3.5-27B.

Updated July 23, 2026
Shared results
15
GPT-5.6 Sol only
31
Qwen3.5-27B only
13
Comparable categories
3 / 8

Pick GPT-5.6 Sol if you want the stronger benchmark profile. Qwen3.5-27B only becomes the better choice if coding is the priority or you want the cheaper token bill.

Confidence note. This is a partial-evidence comparison with 15 shared benchmark results across 6 evidence categories; 3 of 8 categories currently have scoreable aggregates for both models. Treat the verdict as directional until coverage is more balanced.

Why this result

GPT-5.6 Sol is clearly ahead on the BenchAlign aggregate, 81.96 to 60.7. The gap is large enough that you do not need to squint at the spreadsheet to see the difference.

GPT-5.6 Sol's sharpest advantage is in agentic, where it averages 92 against 52. The single biggest benchmark swing on the page is Terminal-Bench 2.0, 91.9% to 41.6%. Qwen3.5-27B does hit back in coding, so the answer changes if that is the part of the workload you care about most.

GPT-5.6 Sol is also the more expensive model on tokens at $5.00 input / $30.00 output per 1M tokens, versus $0.00 input / $0.00 output per 1M tokens for Qwen3.5-27B. That is roughly Infinityx on output cost alone. GPT-5.6 Sol gives you the larger context window at 1M, compared with 262K for Qwen3.5-27B.

Category breakdown

Exact category averages are shown below. Not measured means BenchLM does not have enough sourced public coverage for that model and category.

Category scores and score margins for GPT-5.6 Sol and Qwen3.5-27B
CategoryGPT-5.6 SolΔQwen3.5-27B
AgenticGPT-5.6 Sol92.0Margin 40.0Qwen3.5-27B52.0
KnowledgeGPT-5.6 Sol94.6Margin 11.9Qwen3.5-27B82.7
CodingGPT-5.6 Sol64.6Margin 0.3Qwen3.5-27B64.9
ReasoningGPT-5.6 SolNot measuredMarginNo overlapQwen3.5-27B60.6
MathGPT-5.6 Sol87.5MarginNo overlapQwen3.5-27BNot measured
MultilingualGPT-5.6 SolNot measuredMarginNo overlapQwen3.5-27B82.2
MultimodalGPT-5.6 Sol83.0MarginNo overlapQwen3.5-27BNot measured
Inst. FollowingGPT-5.6 SolNot measuredMarginNo overlapQwen3.5-27B95.0

Decisive benchmark drivers

The largest measured benchmark gaps in this matchup, with exact reported values.

More
A · GPT-5.6 SolB · Qwen3.5-27B
  1. Terminal-Bench 2.0

    Agentic
    Source ↗
    A 91.9%B 41.6%
    Winner: GPT-5.6 SolΔ 50.3
    Terminal-Bench 2.0: GPT-5.6 Sol scored 91.9%; Qwen3.5-27B scored 41.6%. GPT-5.6 Sol wins this benchmark.
  2. BrowseComp

    Agentic
    Source ↗
    A 92.2%B 61%
    Winner: GPT-5.6 SolΔ 31.2
    BrowseComp: GPT-5.6 Sol scored 92.2%; Qwen3.5-27B scored 61%. GPT-5.6 Sol wins this benchmark.
  3. GPQA

    Knowledge
    Source ↗
    A 94.6%B 85.5%
    Winner: GPT-5.6 SolΔ 9.1
    GPQA: GPT-5.6 Sol scored 94.6%; Qwen3.5-27B scored 85.5%. GPT-5.6 Sol wins this benchmark.

Operational comparison

Runtime and commercial metrics are compared only when both models have a complete sourced value.

MetricGPT-5.6 SolQwen3.5-27BComparison
Input / output priceUSD per 1M tokensGPT-5.6 Sol$5 input / $30 outputQwen3.5-27B$0 input / $0 outputQwen3.5-27B has the lower combined listed price.
Generation speedtokens per secondGPT-5.6 SolNot availableQwen3.5-27BNot availableA complete speed comparison is not available.
First-answer latencyseconds to first tokenGPT-5.6 SolNot availableQwen3.5-27BNot availableA complete latency comparison is not available.
Context windowmaximum listed tokensGPT-5.6 Sol1MQwen3.5-27B262KGPT-5.6 Sol lists the larger context window.

Benchmark Deep Dive

AgenticGPT-5.6 Sol wins
BenchmarkGPT-5.6 SolQwen3.5-27BResult
Terminal-Bench 2.0Source 91.9%41.6%GPT-5.6 Sol leads
BrowseCompSource 92.2%61%GPT-5.6 Sol leads
OSWorld 2.0Source 62.6%Not comparable
CyberGymSource 84.5%Not comparable
ExploitGymSource 33.7%Not comparable
ToolathlonSource 58%Not comparable
AA Agentic IndexSource 54.0%Not comparable
τ²-bench resultsSource 85.1%93.9%Qwen3.5-27B leads
GDPval-AASource 61.8%Not comparable
GDPval-AASource 1736Not comparable
AA BriefcaseSource 1501Not comparable
AA ITBenchSource 56.2%Not comparable
AA Tau3 BankingSource 33.0%Not comparable
AA AutomationBenchSource 51.2%Not comparable
AA Harvey LABSource 87.2%Not comparable
terminalBenchHardSource 65.9%Not comparable
aaTerminalBench21Source 88%Not comparable
OSWorld-VerifiedSource 56.2%Not comparable
Gert LabsSource 39.41%Not comparable
CodingQwen3.5-27B wins
BenchmarkGPT-5.6 SolQwen3.5-27BResult
SWE-bench ProSource 64.6%Not comparable
Terminal-Bench 2.0Source 91.9%Not comparable
deepSweSource 72.7%Not comparable
FrontierCode 1.1 ExtendedSource 60.6%Not comparable
cursorBench32Source 67.2%Not comparable
VulcanBench v3Source 87.0%Not comparable
AA Coding IndexSource 77.4%Not comparable
AA-SciCodeSource 56.1%39.5%GPT-5.6 Sol leads
SWE-bench VerifiedSource 72.4%Not comparable
SWE-RebenchSource 58.9%Not comparable
Reasoning
BenchmarkGPT-5.6 SolQwen3.5-27BResult
ARC-AGI-3Source 7.8%Not comparable
GeneBench-ProSource 28.7%Not comparable
AA-LCRSource 73.7%67.3%GPT-5.6 Sol leads
CritPtSource 32.3%0.9%GPT-5.6 Sol leads
LongBench v2Source 60.6%Not comparable
KnowledgeGPT-5.6 Sol wins
BenchmarkGPT-5.6 SolQwen3.5-27BResult
GPQASource 94.6%85.5%GPT-5.6 Sol leads
GPQA-DSource 94.6%Not comparable
HealthBench ProfessionalSource 60.5%Not comparable
HealthBench HardSource 33.1%Not comparable
Artificial Analysis Intelligence IndexSource 58.9%33.8%GPT-5.6 Sol leads
AA-GPQA DiamondSource 94.1%85.8%GPT-5.6 Sol leads
AA-HLESource 47.2%22.2%GPT-5.6 Sol leads
AA-Omniscience IndexSource 21.7%-42.0%GPT-5.6 Sol leads
AA-Omniscience AccuracySource 58.5%21.0%GPT-5.6 Sol leads
AA-Omniscience Hallucination RateSource 88.8%79.7%Qwen3.5-27B leads
MMLU-ProSource 86.1%Not comparable
SuperGPQASource 65.6%Not comparable
Math
BenchmarkGPT-5.6 SolQwen3.5-27BResult
FrontierMath (legacy)Source 89%Not comparable
FrontierMath v2 (Tiers 1-3)Source 89.000%Not comparable
FrontierMath v2 (Tier 4)Source 83.000%Not comparable
Multilingual
BenchmarkGPT-5.6 SolQwen3.5-27BResult
MMLU-ProXSource 82.2%Not comparable
Multimodal
BenchmarkGPT-5.6 SolQwen3.5-27BResult
MMMU-ProSource 83%Not comparable
MMMU-Pro w/ PythonSource 84.6%Not comparable
AA-MMMU-ProSource 83.4%75.0%GPT-5.6 Sol leads
MMMUSource 82.3%Not comparable
MMVUSource 73.3%Not comparable
MathVisionSource 86.0%Not comparable
V*Source 93.7%Not comparable
Inst. Following
BenchmarkGPT-5.6 SolQwen3.5-27BResult
AA-IFBenchSource 72.7%75.6%Qwen3.5-27B leads
IFEvalSource 95%Not comparable
Frequently Asked Questions (4)

Which is better, GPT-5.6 Sol or Qwen3.5-27B?

GPT-5.6 Sol is ahead on BenchLM's BenchAlign leaderboard, 81.96 to 60.7. The biggest single separator in this matchup is Terminal-Bench 2.0, where the scores are 91.9% and 41.6%.

Which is better for knowledge tasks, GPT-5.6 Sol or Qwen3.5-27B?

GPT-5.6 Sol has the edge for knowledge tasks in this comparison, averaging 94.6 versus 82.7. Inside this category, AA-Omniscience Index is the benchmark that creates the most daylight between them.

Which is better for coding, GPT-5.6 Sol or Qwen3.5-27B?

Qwen3.5-27B has the edge for coding in this comparison, averaging 64.9 versus 64.6. Inside this category, AA-SciCode is the benchmark that creates the most daylight between them.

Which is better for agentic tasks, GPT-5.6 Sol or Qwen3.5-27B?

GPT-5.6 Sol has the edge for agentic tasks in this comparison, averaging 92 versus 52. Inside this category, Terminal-Bench 2.0 is the benchmark that creates the most daylight between them.

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Last updated: July 23, 2026

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