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Flash

first_img DeepSeek open-source Ascend basic components, covering compilation, computation, and communication libraries

The artificial intelligence company DeepSeek has officially open-sourced infrastructure components for the Huawei Ascend computing platform, covering the TileLang high-level language compilation tool, computing libraries, and distributed communication libraries, corresponding to the previously open-sourced components for the NVIDIA platform. TileLang aims to provide a general-purpose, simpler programming language that can achieve the hardware performance limits, improving development efficiency and simplifying logic compared to CUDA, while its programming model can also leverage chip features.The TileLang route was first validated on the NVIDIA platform and has already supported the implementation of most operators in the training of the DeepSeek V4 series models. The open-sourced Ascend version encapsulates the underlying instructions of the Ascend C, providing a high-level programming approach without sacrificing hardware performance. Currently, every TileLang operator used in DeepSeek's training has a corresponding high-performance implementation on Ascend.The components open-sourced at the same time also include DeepGEMM, DeepEP, TileKernels, FlashMLA, and DeepSelect, which are used for general matrix operations, large-scale cross-device communication, conventional vector calculations and memory access, long-context sparse attention, and data filtering, respectively. DeepSeek claims that in multiple key tests, the related computing and communication performance has approached hardware limits; during the R&D process, the Huawei team provided support, and both parties collaborated to advance the 128-card supernode solution based on Ascend 950, with deep optimizations made for computing and communication.

first_img Satellite communication company Space Network signs a $50 million pre-purchase in the Philippines

Satellite communication infrastructure company Space Network has signed a binding pre-purchase agreement worth $50 million with Philippine infrastructure company HQ Company International Holdings to provide satellite connectivity to the Philippines through the low Earth orbit satellite network Freeport. The signing ceremony was held at SKY 31 in Seoul, attended by Space Network CEO Tae Lim Oh and HQ Company CEO Yongsoo Samuel Cho.According to the agreement, Space Network will provide access to the Freeport network, technical hardware, software, and ongoing engineering support, while HQ Company will be responsible for local sales, customer acquisition, spectrum authorization, and regional service implementation. Cho is the son-in-law of former Philippine President Fidel V. Ramos and has long been engaged in cross-border investment and infrastructure business in the Philippines. This agreement adds to the $100 million agreement signed by Space Network with Vietnam's DETI Technology in June 2026, bringing the total commercial pre-purchase amount to $150 million.Freeport is built and operated by Space Network, currently featuring 4 low Earth orbit satellites, with plans to expand to approximately 230 satellites by the time commercial services launch in 2029. Operators can purchase regional capacity and build their own services on the open network, with nodes settling through on-chain contracts. The related project Spacecoin combines blockchain protocols with low Earth orbit satellites for service pricing and payments within the network.

The National Tax Agency of Japan's new system KSK2 officially launches: AI enhances cryptocurrency declaration verification

According to CoinPost, the National Tax Agency of Japan officially launched the first upgrade of its next-generation core system KSK2 on September 24, marking the first upgrade in about 25 years. The new system centers around personal identification numbers (My Number) and corporate identification numbers, achieving unified management of individual and corporate data, and introducing AI technology to enhance the detection of improper declarations.Cryptocurrency traders and investors are particularly affected, as annual transaction reports submitted by exchanges, bank account deposit and withdrawal records, and information exchange with overseas tax authorities (CRS) data have all been included in the key analysis scope of AI.In addition, statements related to "cryptocurrency profits" on social media will also be compared with declaration data, significantly increasing the risk of tax investigations. The National Tax Agency has also integrated horizontal data between corporations and individuals, making it easier to identify inconsistencies in assets and income for investors who purchase cryptocurrencies through private company investments or with funds from gifts and inheritances.Industry insiders emphasize that properly retaining annual transaction reports and accurately and completely declaring them has become an urgent priority.

first_img OpenAI: Safety justification should be submitted before cutting-edge reinforcement learning training

On September 28, 2026, OpenAI published a safety-related article, stating that before continuing any cutting-edge reinforcement learning training, structured safety documentation should be required. Ideally, such documentation should reach the evidence-based structured risk argument level used in safety-critical industries like aviation and nuclear power. OpenAI views this as a direction for effort while acknowledging the complexity arising from the emergence of AI capabilities, making it difficult to achieve the same level of rigor.The article focuses on cutting-edge reinforcement learning training and does not cover the broader alignment attributes required for internal and external deployments. The recommendations in the article reflect current practices, which are expected to continue evolving and are being implemented internally at OpenAI. Technical safeguards should cover model alignment, isolation, and monitoring, including avoiding speculative positive reinforcement rewards, offline alignment assessments and stress testing, preventing automated scorers from seeing thought chains, as well as multi-layer infrastructure security, sandbox red teaming, limiting high-bandwidth cross-sample communication, and immutable preservation of agent records.Operational guidelines include preemptive dissent across teams, approvals that can be vetoed by senior leadership, accountability of training leads for safety arguments and incident responses, as well as fail-safe pauses, internal oversight, audit access, and escalation by severity. In response to serious misalignment events, OpenAI proposes controlled access to original records, root cause analysis, operational and cultural reviews, and treating incident-derived assessments as regression tests; results of investigations should be made public, along with reviews and operational changes, and affected third parties should be notified as soon as possible.
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