RADEON

AMD Radeon HD 7500G IGP

AMD graphics card specifications and benchmark scores

VRAM
424
MHz Boost
17W
TDP
Bus Width

At a Glance

AMD
VRAM System Shared
Boost Clock 424 MHz
Shaders 256
TDP 17W
Memory Type System Shared
Architecture TeraScale 3
nm
Process 32 nm
Released May 2012

AMD Radeon HD 7500G IGP Specifications

Radeon HD 7500G IGP GPU Core

Shader units and compute resources

The AMD Radeon HD 7500G IGP 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.

Shading Units
256
Shaders
256
TMUs
16
ROPs
8
Compute Units
4

HD 7500G IGP Clock Speeds

GPU and memory frequencies

Clock speeds directly impact the Radeon HD 7500G IGP'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 Radeon HD 7500G IGP by AMD dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.

Base Clock
327 MHz
Base Clock
327 MHz
Boost Clock
424 MHz
Boost Clock
424 MHz
Memory Clock
System Shared
GDDR GDDR 6X 6X

AMD's Radeon HD 7500G IGP Memory

VRAM capacity and bandwidth

VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The Radeon HD 7500G IGP'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.

Memory Size
System Shared
Memory Type
System Shared
VRAM Type
System Shared
Memory Bus
System Shared
Bandwidth
System Dependent

HD 7500G IGP Theoretical Performance

Compute and fill rates

Theoretical performance metrics provide a baseline for comparing the AMD Radeon HD 7500G IGP 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.

FP32 (Float)
217.1 GFLOPS
Pixel Rate
3.392 GPixel/s
Texture Rate
6.784 GTexel/s

TeraScale 3 Architecture & Process

Manufacturing and design details

The AMD Radeon HD 7500G IGP is built on AMD's TeraScale 3 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 HD 7500G IGP will perform in GPU benchmarks compared to previous generations.

Architecture
TeraScale 3
GPU Name
Devastator Lite
Process Node
32 nm
Foundry
GlobalFoundries
Transistors
1,303 million
Die Size
246 mm²
Density
5.3M / mm²

AMD's Radeon HD 7500G IGP Power & Thermal

TDP and power requirements

Power specifications for the AMD Radeon HD 7500G IGP 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 Radeon HD 7500G IGP to maintain boost clocks without throttling.

TDP
17 W
TDP
17W

Radeon HD 7500G IGP by AMD Physical & Connectivity

Dimensions and outputs

Physical dimensions of the AMD Radeon HD 7500G IGP 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.

Slot Width
IGP
Bus Interface
IGP
Display Outputs
Portable Device Dependent
Display Outputs
Portable Device Dependent

AMD API Support

Graphics and compute APIs

API support determines which games and applications can fully utilize the AMD Radeon HD 7500G IGP. 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.

DirectX
11.2 (11_0)
DirectX
11.2 (11_0)
OpenGL
4.4
OpenGL
4.4
OpenCL
1.2
Shader Model
5.0

Radeon HD 7500G IGP Product Information

Release and pricing details

The AMD Radeon HD 7500G IGP is manufactured by AMD 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 Radeon HD 7500G IGP by AMD represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.

Manufacturer
AMD
Release Date
May 2012
Production
End-of-life
Predecessor
TeraScale 2 IGP
Successor
GCN 2.0 IGP

Radeon HD 7500G IGP Benchmark Scores

No benchmark data available for this GPU.

About AMD Radeon HD 7500G IGP

The AMD Radeon HD 7500G IGP represents a specific moment in mobile computing, where the graphics processor was fused directly onto the CPU die. Based on the TeraScale 3 architecture and built on a 32 nm process at GlobalFoundries, this integrated graphics processor (IGP) was designed for the Trinity Mobile generation. With a production status of end-of-life and a release date of May 2012, it is a legacy part, yet its specifications still offer a clear picture of its intended capabilities. The data shows a processor positioned at the 50th percentile against all GPUs, indicating it was a mid-pack performer in its day, though its benchmark score is listed as zero, suggesting a lack of standardized testing data for this IGP. This analysis relies strictly on the provided facts to interpret what this hardware offers.

Benchmark Performance

The performance profile of the AMD Radeon HD 7500G IGP is defined by its modest compute resources. The chip operates with a base clock of 327 MHz and a boost clock of 424 MHz. This relatively low clock speed, combined with the architecture's design, yields a peak FP32 performance of 217.1 GFLOPS. This figure represents the theoretical maximum for single-precision floating-point calculations and serves as a baseline for understanding its compute limits. In practical terms, this level of throughput is sufficient for basic 2D desktop acceleration and light 3D workloads, but it is not designed for demanding modern games.

The pixel and texture fill rates provide further insight into its rendering capabilities. The IGP can process 3.392 GPixel/s and 6.784 GTexel/s. The texture rate is exactly double the pixel rate, which is a common ratio for this class of hardware. This balance suggests that the GPU is not severely bottlenecked in one specific stage of the rendering pipeline for its intended workload. However, these numbers are minuscule compared to even entry-level discrete graphics cards of the same era, reinforcing that this is a solution for basic graphical output rather than high-performance gaming.

Given that the `nearestRivals` field is empty and no benchmark scores are available, direct numerical comparisons to other specific GPUs are not possible from the data. The 50th percentile ranking, however, places it in the middle of the historical performance distribution. This is a neutral position, indicating that it was neither a standout performer nor a complete laggard. The absence of benchmark data means that any claims about its relative speed must be grounded purely in its theoretical specifications, which point to a part designed for efficiency and basic tasks, not for competing with dedicated graphics solutions.

Memory Subsystem

The memory configuration of the HD 7500G is its most defining characteristic, as it uses "System Shared" memory. This means the IGP does not have its own dedicated VRAM; instead, it dynamically allocates a portion of the system's main RAM for graphics duties. The memory type and bus width are also listed as "System Shared," indicating that the interface to memory is dependent on the host system's architecture. The bandwidth is explicitly stated as "System Dependent," which is a crucial qualifier. The performance of the graphics subsystem is therefore directly tied to the speed and configuration of the CPU's memory controller and the type of RAM installed in the laptop.

The practical implication of this shared memory architecture is significant for high-resolution workloads. Because the GPU and CPU compete for the same memory bandwidth, performance can degrade under heavy load. At higher resolutions, the demand for memory bandwidth increases exponentially, and the system-dependent nature of this IGP means that it will likely struggle to maintain smooth frame rates. The data suggests that this part is not suited for high-resolution gaming, as the memory subsystem is a fundamental bottleneck. For standard desktop usage at modest resolutions, the shared memory approach is adequate, but for any intensive graphical task, the lack of dedicated high-speed VRAM is a severe limitation.

The reliance on system memory also means there is no fixed VRAM size. The "System Shared" designation indicates that the available graphics memory fluctuates based on system RAM and the operating system's allocation policy. This variability makes it difficult to predict consistent performance across different laptops. A system with faster dual-channel memory would yield better IGP performance than one with slower single-channel memory, but the fact pack does not specify these variables. The key takeaway is that the memory subsystem is flexible but inherently constrained, making it a poor fit for scenarios requiring high memory bandwidth.

Power and Cooling

Power consumption is a clear strength of this integrated processor. The AMD Radeon HD 7500G IGP has a TDP of 17 W. This low thermal design power figure indicates that it generates minimal heat, making it ideal for thin and light portable devices where cooling is a challenge. The "IGP" slot width confirms that it is not a separate expansion card but is integrated into the motherboard, further simplifying cooling requirements. A capable air cooler, typical of ultraportable laptops, would be more than sufficient to manage the thermal output of this chip, even under sustained load.

The low TDP also has implications for system power supply requirements. The fact pack does not list a suggested PSU, and it lists no power connectors. This is because the IGP draws its power from the motherboard's power delivery system, which is shared with the CPU. Consequently, there is no need for a standalone PSU recommendation or external power connectors. The entire platform's power envelope is low, which allows for smaller batteries and more compact chassis designs. This efficiency is a hallmark of the APU concept, where CPU and GPU share a unified power budget.

The 17 W TDP is the total for the graphics portion, but in practice, the entire APU package would draw more. However, this figure still highlights the energy-efficient nature of the design. For a system builder or user, this means less heat to exhaust, quieter operation, and longer battery life compared to systems with discrete graphics. The lack of power connectors simplifies installation and reduces cable clutter, reinforcing that this is a component for integrated, low-power systems. The data indicates that power and cooling are non-issues for this part, allowing for flexible system designs.

Who Should Consider It

Given its limited specifications, the AMD Radeon HD 7500G IGP is not a candidate for modern gaming or demanding creative workloads. The 217.1 GFLOPS compute power and system-dependent memory bandwidth place it firmly in the realm of basic computing. Users who primarily engage in web browsing, office productivity, word processing, and video playback would find this IGP adequate. It is designed to drive the integrated display of a laptop or an all-in-one system, providing a smooth graphical interface for everyday tasks.

For gaming, the data suggests this is only suitable for very old or extremely lightweight titles. The pixel rate of 3.392 GPixel/s and texture rate of 6.784 GTexel/s are simply too low to handle the complex shaders and high-resolution textures of modern games. Any attempt to run such software would result in very low frame rates, even at the lowest settings and resolutions. The 50th percentile ranking might suggest it was average historically, but that average was for a time when games were far less demanding. For a user with a large library of 2D indie games or pre-2010 titles, it might suffice at low resolutions.

The primary audience for this IGP is not a gamer but a user seeking a basic, power-efficient system for general use. The 17 W TDP makes it an excellent choice for a budget laptop focused on battery life and portability. It is a "good enough" solution for displaying documents, streaming video, and running basic applications. Anyone with expectations of playing current 3D games or doing heavy GPU-accelerated work should look elsewhere, as this part's capabilities are strictly limited to foundational computing tasks.

Ray Tracing and Feature Set

The AMD Radeon HD 7500G IGP does not include any dedicated ray tracing cores. The fact pack lists `rtCores` as null, which confirms the absence of hardware acceleration for ray-traced effects. This is expected for a 2012-era integrated GPU based on the TeraScale 3 architecture, which predates the introduction of such technology. Consequently, any ray tracing workloads would be handled by the shader units, resulting in extremely poor performance. This is not a feature that users should expect to utilize.

Similarly, the IGP has no tensor cores, which are specialized units for AI and machine learning tasks. The `tensorCores` field is null, indicating a lack of hardware support for these workloads. This is consistent with the historical period of the part, as tensor cores were introduced much later. The absence of these cores means that the GPU cannot accelerate modern AI-based features like DLSS or other neural network processing. The feature set is strictly confined to the traditional rasterization pipeline.

In terms of API support, the IGP supports DirectX 11.2 (11_0) and OpenGL 4.4. It does not support Vulkan, as the `vulkan` field is null. DirectX 11.2 support means it can run games and applications that use that API, but it is not compatible with the newer DirectX 12 or Vulkan titles. This limits its software compatibility to a certain generation of games. The lack of Vulkan is particularly notable, as it excludes it from many modern titles that use this API for better performance. The API support is sufficient for its era but is now considered dated, further cementing its status as a legacy component.

FAQ

Q: What is the performance class of the AMD Radeon HD 7500G IGP?

A: The data indicates it sits at the 50th percentile against all GPUs, with a peak FP32 performance of 217.1 GFLOPS. This places it as a mid-pack performer historically, but its benchmark score is listed as zero, implying a lack of standardized testing data.

Q: How much dedicated VRAM does this IGP have?

A: It has no dedicated VRAM. The memory size, type, and bus width are all listed as "System Shared," meaning it dynamically uses a portion of the system's main RAM for graphics operations.

Q: What is the memory bandwidth of this graphics processor?

A: The memory bandwidth is "System Dependent." This means it is not a fixed value and varies based on the host system's memory configuration, such as the speed and channel mode of the installed RAM.

Q: What are the power requirements for this IGP?

A: The TDP is 17 W. It has no power connectors and no suggested PSU, as it draws power directly from the motherboard and is designed for integrated, low-power systems.

Q: Can this IGP handle modern games?

A: No. With a pixel rate of 3.392 GPixel/s and a texture rate of 6.784 GTexel/s, it is only suitable for basic tasks. It lacks the compute power for modern 3D games, and its DirectX 11.2 support limits compatibility with newer titles.

Q: Does it support ray tracing or Vulkan?

A: No. It has no ray tracing cores and no tensor cores. While it supports DirectX 11.2 (11_0) and OpenGL 4.4, it does not support the Vulkan API.

The NVIDIA Equivalent of Radeon HD 7500G IGP

Looking for a similar graphics card from NVIDIA? The NVIDIA GeForce RTX 2080 offers comparable performance and features in the NVIDIA lineup.

NVIDIA GeForce RTX 2080

NVIDIA • 8 GB VRAM

View Specs Compare

Popular AMD Radeon HD 7500G IGP Comparisons

See how the Radeon HD 7500G IGP stacks up against similar graphics cards from the same generation and competing brands.

Compare Radeon HD 7500G IGP with Other GPUs

Select another GPU to compare specifications and benchmarks side-by-side.

Browse GPUs