NVIDIA NVS 4200M
NVIDIA graphics card specifications and benchmark scores
At a Glance
NVIDIANVIDIA NVS 4200M Specifications
GPU Core
Shader units and compute resources
The NVIDIA NVS 4200M GPU core specifications define its raw processing power for graphics and compute workloads. Shading units (also called CUDA cores, stream processors, or execution units depending on manufacturer) handle the parallel calculations required for rendering. TMUs (Texture Mapping Units) process texture data, while ROPs (Render Output Units) handle final pixel output. Higher shader counts generally translate to better GPU benchmark performance, especially in demanding games and 3D applications.
NVS 4200M Clock Speeds
GPU and memory frequencies
Clock speeds directly impact the NVS 4200M's performance in GPU benchmarks and real-world gaming. The base clock represents the minimum guaranteed frequency, while the boost clock indicates peak performance under optimal thermal conditions. Memory clock speed affects texture loading and frame buffer operations. The NVS 4200M by NVIDIA dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.
NVIDIA's NVS 4200M Memory
VRAM capacity and bandwidth
VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The NVS 4200M's memory capacity determines how well it handles high-resolution textures and multiple displays. Memory bandwidth, measured in GB/s, affects how quickly data moves between the GPU and VRAM. Higher bandwidth improves performance in memory-intensive scenarios like 4K gaming. The memory bus width and type (GDDR6, GDDR6X, HBM) significantly influence overall GPU benchmark scores.
NVS 4200M by NVIDIA Cache
On-chip cache hierarchy
On-chip cache provides ultra-fast data access for the NVS 4200M, reducing the need to fetch data from slower VRAM. L1 and L2 caches store frequently accessed data close to the compute units. AMD's Infinity Cache (L3) dramatically increases effective bandwidth, improving GPU benchmark performance without requiring wider memory buses. Larger cache sizes help maintain high frame rates in memory-bound scenarios and reduce power consumption by minimizing VRAM accesses.
NVS 4200M Theoretical Performance
Compute and fill rates
Theoretical performance metrics provide a baseline for comparing the NVIDIA NVS 4200M against other graphics cards. FP32 (single-precision) performance, measured in TFLOPS, indicates compute capability for gaming and general GPU workloads. FP64 (double-precision) matters for scientific computing. Pixel and texture fill rates determine how quickly the GPU can render complex scenes. While real-world GPU benchmark results depend on many factors, these specifications help predict relative performance levels.
Fermi 2.0 Architecture & Process
Manufacturing and design details
The NVIDIA NVS 4200M is built on NVIDIA's Fermi 2.0 architecture, which defines how the GPU processes graphics and compute workloads. The manufacturing process node affects power efficiency, thermal characteristics, and maximum clock speeds. Smaller process nodes pack more transistors into the same die area, enabling higher performance per watt. Understanding the architecture helps predict how the NVS 4200M will perform in GPU benchmarks compared to previous generations.
Power & Thermal
TDP and power requirements
Power specifications for the NVIDIA NVS 4200M determine PSU requirements and thermal management needs. TDP (Thermal Design Power) indicates the heat output under typical loads, guiding cooler selection. Power connector requirements ensure adequate power delivery for stable operation during demanding GPU benchmarks. The suggested PSU wattage accounts for the entire system, not just the graphics card. Efficient power delivery enables the NVS 4200M to maintain boost clocks without throttling.
NVS 4200M by NVIDIA Physical & Connectivity
Dimensions and outputs
Physical dimensions of the NVIDIA NVS 4200M are critical for case compatibility. Card length, height, and slot width determine whether it fits in your chassis. The PCIe interface version affects bandwidth for communication with the CPU. Display outputs define monitor connectivity options, with modern cards supporting multiple high-resolution displays simultaneously. Verify these specifications against your case and motherboard before purchasing to ensure a proper fit.
NVIDIA API Support
Graphics and compute APIs
API support determines which games and applications can fully utilize the NVIDIA NVS 4200M. DirectX 12 Ultimate enables advanced features like ray tracing and variable rate shading. Vulkan provides cross-platform graphics capabilities with low-level hardware access. OpenGL remains important for professional applications and older games. CUDA (NVIDIA) and OpenCL enable GPU compute for video editing, 3D rendering, and scientific applications. Higher API versions unlock newer graphical features in GPU benchmarks and games.
NVS 4200M Product Information
Release and pricing details
The NVIDIA NVS 4200M is manufactured by NVIDIA as part of their graphics card lineup. Release date and launch pricing provide context for comparing GPU benchmark results with competing products from the same era. Understanding the product lifecycle helps evaluate whether the NVS 4200M by NVIDIA represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.
About NVIDIA NVS 4200M
# NVIDIA NVS 4200M — Benchmark Database Analysis
The NVIDIA NVS 4200M is a mobile workstation graphics solution built on the Fermi 2.0 architecture, fabricated on TSMC's 40 nm process. The chip, designated GF119S, integrates 292 million transistors on a 79 mm² die, yielding a transistor density of 3.7 million per square millimeter. This end-of-life product, released in February 2011, occupies the 50th percentile among all GPUs in the database, indicating a mid-pack position despite its age and modest specifications.
Benchmark Performance
The NVS 4200M presents a compute profile consistent with its entry-level mobile positioning. The GPU delivers 155.5 GFLOPS of FP32 performance, a figure that reflects its 48 shading units operating at the memory clock-derived frequency. With 8 texture mapping units and 4 raster operation pipelines, the card achieves a pixel rate of 1.620 GPixel/s and a texture rate of 6.480 GTexel/s. These figures place the NVS 4200M in a class where basic 2D and light 3D workloads are feasible, but demanding modern titles will strain the hardware.
The memory subsystem comprises 1024 MB of DDR3 on a 64-bit bus, operating at 800 MHz with 1600 Mbps effective data rate. This configuration yields a memory bandwidth of 12.80 GB/s, a modest figure that aligns with the card's intended role as a portable workstation companion rather than a gaming or rendering powerhouse. The bandwidth constraint is particularly evident in texture-heavy scenes, where the 64-bit interface becomes a bottleneck.
Relative to the broader database, the NVS 4200M's 50th percentile ranking underscores its middling standing. The average benchmark score of 0 in the database reflects a lack of standardized test submissions for this part, meaning direct numeric comparisons with other GPUs must be interpreted cautiously. The absence of nearest rival data in the fact pack means the card's competitive positioning must be assessed through its architectural attributes and clock-driven capabilities rather than head-to-head benchmark deltas.
Ray Tracing and Feature Set
The NVS 4200M predates dedicated ray tracing hardware. The fact pack lists no RT cores and no tensor cores, confirming that this Fermi-era GPU relies entirely on traditional rasterization techniques. Hardware-accelerated ray tracing is unavailable, and any ray-traced workloads would execute on the general-purpose shading units with substantial performance penalties. For professional applications that leverage ray tracing for previews or final renders, this card would require software fallbacks or CPU-based computation.
The feature set is defined by its API support. DirectX 12 (11_0) is listed, indicating functional compatibility with the DirectX 12 API at the 11_0 feature level. This means the card can run DirectX 12 titles, but without the advanced features associated with higher feature levels. OpenGL 4.6 support is present, providing a modern and capable graphics API path for workstation applications. Vulkan support is not listed, leaving that API unavailable. This API combination suits legacy professional workloads and older gaming titles but limits the card's utility in modern, API-diverse environments.
The display outputs are described as "Portable Device Dependent," reflecting the MXM module form factor. This means the actual connectors vary by laptop implementation, with the GPU providing output signals that the OEM routes to onboard display ports. The bus interface is MXM, confirming the modular mobile design that allows laptop manufacturers to swap graphics modules.
How It Compares
The fact pack lists no nearest rivals for the NVS 4200M, leaving its competitive position defined only by its own specifications and the database-wide percentile. This absence of comparative data is notable, as it suggests the card occupies a niche with few direct competitors in the benchmark database. The 50th percentile ranking implies that half of all GPUs in the database outperform it, while half underperform — a balanced standing that reflects its entry-level mobile focus.
Against integrated graphics solutions of its era, the NVS 4200M's discrete 48 shading units and dedicated 1024 MB of DDR3 would provide a measurable advantage, particularly in sustained workloads where shared-memory iGPUs suffer. The 12.80 GB/s bandwidth, while low by modern standards, exceeds the system-memory bandwidth allocations typical of contemporaneous integrated parts. However, without specific rival data, these comparisons remain qualitative.
In the context of modern entry-level discrete GPUs, the NVS 4200M's 155.5 GFLOPS and 6.480 GTexel/s fall far behind. The Fermi architecture's lack of hardware ray tracing and tensor cores further widens the gap in feature support. The 25 W TDP, however, positions it as a low-power option suitable for thin-and-light workstations, a niche where raw performance is secondary to thermal and power efficiency.
Power and Cooling
The NVS 4200M carries a TDP of 25 W, a modest power envelope that aligns with its mobile workstation pedigree. This low thermal design power allows for passive cooling in some implementations or a single low-profile fan in others, depending on the laptop chassis. The MXM Module slot width indicates a removable graphics module, enabling field upgrades or replacements in compatible systems.
The power connector requirement is listed as "None," meaning the card draws all power through the MXM slot interface. This simplifies installation and reduces cabling complexity within the laptop. No suggested PSU is listed, which is typical for mobile parts where the system's power delivery is managed by the laptop's internal power supply and battery charging circuitry. Desktop users or those adapting this card for other purposes would need to ensure their power supply can handle the 25 W load, but no specific wattage recommendation is provided in the fact pack.
The absence of a suggested PSU figure reflects the card's intended mobile environment. For workstation laptops, the 25 W TDP contributes to the overall system thermal budget, which must also accommodate CPU, chipset, and other components. The low power draw enables thinner designs and longer battery life compared to higher-TDP mobile GPUs, though at the cost of peak performance.
FAQ
Q: What architecture does the NVIDIA NVS 4200M use?
A: The NVS 4200M is based on the Fermi 2.0 architecture, specifically the GF119S chip, fabricated on a 40 nm process by TSMC.
Q: How much memory does the NVS 4200M have and what is its bandwidth?
A: The card has 1024 MB of DDR3 memory on a 64-bit bus, running at 800 MHz (1600 Mbps effective), yielding a bandwidth of 12.80 GB/s.
Q: Does the NVS 4200M support hardware ray tracing?
A: No. The fact pack lists no RT cores and no tensor cores, so hardware-accelerated ray tracing is not available on this GPU.
Q: What is the power consumption of the NVS 4200M?
A: The TDP is 25 W, with no power connector required; the card draws power solely through the MXM slot interface.
Q: What DirectX version does the NVS 4200M support?
A: The card supports DirectX 12 (11_0) and OpenGL 4.6. Vulkan support is not listed.
Q: What is the production status and release date of the NVS 4200M?
A: The card is end-of-life, and it was released on February 21, 2011. It occupies the 50th percentile among all GPUs in the database.
Detailed benchmark scores and charts for the NVIDIA NVS 4200M are below.
Benchmark Scores
geekbench_openclSource
Geekbench OpenCL tests GPU compute performance using the cross-platform OpenCL API. This shows how NVIDIA NVS 4200M handles parallel computing tasks like video encoding and scientific simulations. OpenCL is widely supported across different GPU vendors and platforms.
Compare with Other GPUs
Select another GPU to compare specifications and benchmarks side-by-side.
Browse GPUs