
GeForce RTX 3060 Laptop GPU

Moore Threads MTT S70
GeForce RTX 3060 Laptop GPU vs Moore Threads MTT S70 Performance Spectrum
About G3D Mark
G3D Mark is a standard benchmark that measures graphics performance in real-world gaming scenarios. It simplifies comparing cards from different brands, where higher scores directly correlate with better fps and smoother gaming experiences.
GeForce RTX 3060 Laptop GPU vs Moore Threads MTT S70 FPS Benchmarks
Predicted gaming performance across popular games. Tested paired with Ryzen 7 9800X3D to isolate GPU performance.
Search any supported game below to compare 1080p FPS for both components.

Path of Exile 2

Counter-Strike 2

League of Legends
GeForce RTX 3060 Laptop GPU vs Moore Threads MTT S70: Pros, Cons & Final Verdict
See where each GPU makes more sense in practice: raw FPS, VRAM, features, power draw, pricing, and long-term headroom.
GeForce RTX 3060 Laptop GPU
2022Why buy it
- ✅+600.5% higher PassMark G3D performance.
- ✅Access to DLSS 2 Super Resolution (2020).
- ✅1100% more VRAM for high-resolution textures and newer games (6 GB vs 512 MB).
- ✅Better long-term bet: Ampere (2020−2025) on 8nm gives it a newer hardware base for upcoming games.
- ✅Draws 170W instead of 220W, a 50W reduction.
Trade-offs
- ❌Lower G3D Mark per dollar, at 0 vs 5.4 G3D/$ (Unknown MSRP vs $345 MSRP).
Moore Threads MTT S70
Why buy it
- ✅Delivers 100+% more G3D Mark for each dollar spent, at 5.4 vs 0 G3D/$ ($345 MSRP vs Unknown MSRP).
Trade-offs
- ❌Lower PassMark G3D performance (1,880 vs 13,170).
- ❌Less VRAM, with 512 MB vs 6 GB for high-resolution textures and newer games.
- ❌No DLSS support; it relies on Upscaling support instead.
- ❌Older hardware with 512 MB of VRAM already sits in legacy territory for modern games.
- ❌29.4% higher power demand at 220W vs 170W.
Quick Answers
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GeForce RTX 3060 Laptop GPU vs Moore Threads MTT S70 Technical Specifications
Side-by-side specs, architecture details, clocks, memory, power, and platform differences.

GeForce RTX 3060 Laptop GPU
The GeForce RTX 3060 Laptop GPU is manufactured by NVIDIA. It was released in October 12 2022. It features the Ampere architecture. The core clock ranges from 1320 MHz to 1777 MHz. It has 3584 shading units. The thermal design power (TDP) is 170W. Manufactured using 8 nm process technology. It features 28 dedicated ray tracing cores for enhanced lighting effects. G3D Mark benchmark score: 13,170 points.
Moore Threads MTT S70
The Moore Threads MTT S70 is manufactured by an unknown manufacturer. It was released in sem dados. It features the MUSA architecture. The core clock speed is 1600 MHz. It has 3584 shading units. The thermal design power (TDP) is 220W. Manufactured using 12 nm process technology. G3D Mark benchmark score: 1,880 points.
Graphics Performance
In G3D Mark, the GeForce RTX 3060 Laptop GPU scores 13,170 versus the Moore Threads MTT S70's 1,880 — the GeForce RTX 3060 Laptop GPU leads by 600.5%. The GeForce RTX 3060 Laptop GPU is built on Ampere while the Moore Threads MTT S70 uses MUSA, both on 8 nm vs 12 nm. Shader units: 3,584 (GeForce RTX 3060 Laptop GPU) vs 3,584 (Moore Threads MTT S70). Raw compute: 12.74 TFLOPS (GeForce RTX 3060 Laptop GPU) vs 11.47 TFLOPS (Moore Threads MTT S70).
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| G3D Mark Score | 13,170+601% | 1,880 |
| Architecture | Ampere | MUSA |
| Process Node | 8 nm | 12 nm |
| Shading Units | 3584 | 3584 |
| Compute (TFLOPS) | 12.74 TFLOPS+11% | 11.47 TFLOPS |
| ROPs | 48 | 224+367% |
| TMUs | 112 | 224+100% |
| L2 Cache | 3 MB | 3.5 MB+17% |
Advanced Features (DLSS/FSR)
The GeForce RTX 3060 Laptop GPU gets NVIDIA DLSS, which still tends to look cleaner in motion. The Moore Threads MTT S70 leans on FSR, which is flexible and widely supported, but usually a bit rougher at the same settings.
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| Upscaling Tech | DLSS 2 Super Resolution | Upscaling support |
| Frame Generation | Not Supported | Not Supported |
| Ray Reconstruction | No | No |
| Low Latency | NVIDIA Reflex | Standard |
Video Memory (VRAM)
The GeForce RTX 3060 Laptop GPU has 6 GB of VRAM, while the Moore Threads MTT S70 carries 512 MB. GeForce RTX 3060 Laptop GPU gives you 1100% more memory capacity, which matters more once you move into heavier textures, mods, or higher resolutions. Memory bus width is 192-bit on the GeForce RTX 3060 Laptop GPU and 64-bit on the Moore Threads MTT S70. L2 Cache: 3 MB (GeForce RTX 3060 Laptop GPU) vs 3.5 MB (Moore Threads MTT S70) — the Moore Threads MTT S70 has significantly larger on-die cache to reduce VRAM reliance.
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| VRAM Capacity | 6 GB+1100% | 0.5 GB |
| Memory Type | GDDR6 | GDDR5 |
| Bus Width | 192-bit+200% | 64-bit |
| L2 Cache | 3 MB | 3.5 MB+17% |
Display & API Support
Maximum simultaneous displays: 4 vs 4.
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| Max Displays | 4 | 4 |
Media & Encoding
Hardware encoder: NVENC (7th Gen) (GeForce RTX 3060 Laptop GPU) vs MUSA Gen2 (Moore Threads MTT S70). Decoder: NVDEC (5th Gen) vs MUSA Gen2. Supported codecs: H.264,HEVC,AV1 (Decode),VP9 (GeForce RTX 3060 Laptop GPU) vs H.264,H.265,AV1,VP9 (Moore Threads MTT S70).
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| Encoder | NVENC (7th Gen) | MUSA Gen2 |
| Decoder | NVDEC (5th Gen) | MUSA Gen2 |
| Codecs | H.264,HEVC,AV1 (Decode),VP9 | H.264,H.265,AV1,VP9 |
Power & Dimensions
The GeForce RTX 3060 Laptop GPU draws 170W versus the Moore Threads MTT S70's 220W — a 25.6% difference. The GeForce RTX 3060 Laptop GPU is more power-efficient. Recommended PSU: 500W (GeForce RTX 3060 Laptop GPU) vs 600W (Moore Threads MTT S70). Power connectors: Mobile vs 1x 8-pin.
| Feature | GeForce RTX 3060 Laptop GPU | Moore Threads MTT S70 |
|---|---|---|
| TDP | 170W-23% | 220W |
| Recommended PSU | 500W-17% | 600W |
| Power Connector | Mobile | 1x 8-pin |
| Length | — | 285mm |
| Height | — | 112mm |
| Slots | — | 2 |
| Temp (Load) | 75°C | — |
| Perf/Watt | 77.5+812% | 8.5 |
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