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A100
TOOL HAND CRIMPER SIZE 20 SIDE
- 제조업체
- Mfr.부분 #A100
- 패키지
- 데이터시트 A100 DataSheet
- 재고 있음9634
100% 원래 &새로운
배송 준비 24 시간
365 일 보장
RFQ 및더 많은 할인
사양
| Part Status | Active |
| Tool Method | Manual |
| Tool Type | Hand Crimper |
| For Use With/Related Products | Contacts, Size 20 |
| Ratcheting | Ratchet |
| Wire Entry Location | Side Entry |
개요
Description
With its Multi-Instance GPU (MIG) technology, the A100 can be partitioned into up to seven instances, allowing multiple workloads to run simultaneously on a single GPU, optimizing resource utilization. It also includes high bandwidth memory (HBM2) of up to 40 GB, providing fast access to large datasets.
The A100 is widely used in data centers and by researchers for tasks such as natural language processing, computer vision, and scientific simulations, making it a cornerstone for modern AI and machine learning applications.
Features
1. Architecture: Built on the Ampere architecture, offering significant performance improvements over previous generations.
2. Performance: Delivers up to 20x higher performance for AI training and inference compared to previous models.
3. Memory: Equipped with 40 GB or 80 GB of high-bandwidth HBM2 memory, facilitating large model training and data processing.
4. Multi-Instance GPU (MIG): Enables partitioning of the GPU into up to seven separate instances, allowing for efficient resource utilization and improved workload management.
5. Tensor Cores: Enhanced tensor cores support multiple precision formats, including FP32, FP16, BF16, and INT8, optimizing performance for diverse AI applications.
6. NVLink and NVSwitch: Supports high-speed interconnects for scalable GPU clusters, enhancing communication between GPUs.
7. Software Ecosystem: Compatible with NVIDIA's software stack, including CUDA, TensorRT, and deep learning frameworks.
These features make the A100 a powerful choice for enterprise AI and machine learning applications.
Package
Pinout
Manufacturer
Application
1. Machine Learning and Deep Learning: Training and inference for neural networks.
2. High-Performance Computing (HPC): Scientific simulations and complex calculations.
3. Data Analytics: Accelerating big data processing and analytics tasks.
4. AI Research: Enabling advanced AI model development.
5. Cloud Computing: Supporting AI workloads in cloud environments.
6. Graphical Rendering: Enhancing graphics in gaming and visualization applications.
Its versatility and performance make it suitable for a wide range of computational tasks.
배송
배송 방법We
DHL, FedEx, TNT, UPS 또는 선택한 다른 운송업체를 통해 글로벌 배송 서비스를 제공합니다.
배송 요금 참조 (DHL/FedEx):
DHL은: 배송 비용은 $25-$45 (0.5kg)에서 2-5 영업일의 추정적 배달 시간이 있습니다.
FedEx는: 배송 비용은 $25-$40 (0.5kg)에서 3-7 영업일의 추정적 배달 시간을 가지고 있습니다.
UPS는: 배송 비용은 $25-$45 (0.5kg)에서 3-7 영업일의 추정적 배달 시간을 가지고 있습니다.
TNT는: 배송 비용은 $25-$65 (0.5kg)에서 3-7 영업일의 추정적 배달 시간을 가지고 있습니다.
EMS는: 배송 비용은 $30-$50 (0.5kg)에서 7-15 영업일의 추정적 배달 시간을 제공합니다.
등록된 항공우편: 배송 비용은 $2-$4 (0.1kg), 예상 배달 시간 5-20 영업일.
지불
Payment Methods
지불 기간은 100% 사전 지불입니다.
현재, 우리는 아래 지불 방법만 받아들입니다.:
1. PayPal
2. 신용/직불 카드
3. 전선 전송
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