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The PC-3000 UDMA coupled with the Data Extractor UDMA forms the PC-3000 UDMA Professional System that allows you to recover data from SATA, ATA (IDE) HDD. If you wish to repair these HDD, you need only the PC-3000 UDMA, and for data recovery you need the combination of PC-3000 UDMA and Data Extractor UDMA.
When developing the new PCI-Express-based PC-3000 UDMA system, we used the main features from the previous generation of PCI-based PC-3000 UDMA, which proved to be the best, most reliable, and most optimally performing data recovery system possible, while at the same time maintaining a reasonable price.
Two ports are separable, but when they are both in use they are dependent. There is a slight reduction in performance on the second channel when the first one is fully loaded (no more than 20% reduction) as the PC-3000 UDMA is based on a single-channel PCI-Express bus. At the same time, this technical solution allows a reduction of the total cost of the board and makes it more attractive for small and mid-sized data recovery companies.
The new update has brought the enhanced T2 Reading and Analysis Mode, the support of PS5012, PS3112, and of new SAS SSDs, as well as many more other useful features to improve your work with data recovery cases! All this is available in the freshly-released versions of the English, Chinese, Japanese, and Korean software:
The ACE Lab Online TechCon on Data Recovery & Digital Forensics 2021 revealed a huge number of the most up-to-date features for your PC-3000 tools: support of the new drives families and controllers, T2 Recovery visual mode for SMR drives, a new class of additional maps, and many others functions that make your data recovery job easier and faster.
We constantly expand and add new features to PC-3000 to meet your data recovery needs. Today we are glad to announce that the following English, Japanese, Korean and Chinese software updates are released:
WAL (Write-ahead-log) persists write batches that correspond to operations in memtables and enables consistent database recovery after restart. RocksDB writes to WAL in chunks of some fixed block size for efficiency. It is possible that some write batch does not fit into the space left in the current block and/or is larger than the fixed block size. Thus, serialized write batches (WAL records) are divided into WAL fragments before being written to WAL. The format of a WAL fragment is in the following diagram (there is another legacy format detailed in code comments). Roughly, the Type field indicates whether a fragment is at the beginning, middle or end of a record, and is used to group fragments.
This is for the DB recovery path: WAL fragments are read into memory, concatenated together to form WAL records, and then WriteBatches are constructed from WAL records and added to memtables. In RocksDB 7.4, once a WriteBatch copies its content from a WAL record, ProtectionInfo is constructed from the WriteBatch content and per key-value protection starts. However, this copy operation is not protected, neither is the reconstruction of a WAL record from WAL fragments. To provide protection from silent data corruption during these memory copying operations, we added checksum handshake detailed below in RocksDB 7.5.
Two big picture objectives for "redundancy" are "data redundancy" for DR situations and "application" redundancy for service availability. Our "cluster" situation is an active-passive "redundancy" for the purposes of the mailstore application layer. The raid level of the disks on the san servers the "redundancy" in regards to data recovery for DR. 2ff7e9595c
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