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SCANPSC110FDMQB Datasheet(PDF) 8 Page - National Semiconductor (TI) |
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SCANPSC110FDMQB Datasheet(HTML) 8 Page - National Semiconductor (TI) |
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8 / 29 page ![]() Overview of SCANPSC110F Bridge Functions (Continued) Following a hardware reset, the TAP controller state-machine is in the Test-Logic-Reset (TLR) state; the ’PSC110F-selection state-machine is in the Wait-For-Address state; and each of the three port-selection state-machines is in the Parked-TLR state. The ’PSC110F is then ready to receive Level-1 protocol, followed by Level-2 protocol. Tester/SCANPSC110F Bridge Interface An IEEE 1149.1 system tester sends instructions to a ’PSC110F via that ’PSC110F’s backplane scan-port. Follow- ing test logic reset, the ’PSC110F’s selection state-machine is in the Wait-For-Address state. When the ’PSC110F’s TAP controller is sequenced to the Shift-IR state, data shifted in through the TDI B input is shifted into the ’PSC110F’s instruc- tion register. Note that prior to successful selection of a ’PSC110F, data is not shifted out of the instruction register and out through the ’PSC110F’s TDO B output, as it is during normal scan operations. Instead, as each new bit enters the instruction register’s most-significant bit, data shifted out from the least-significant bit is discarded. When the instruction register is updated with the address data, the ’PSC110F’s address-recognition logic compares the six least-significant bits of the instruction register with the 6-bit assigned address which is statically present on the S (0–5) inputs. Simultaneously, the scanned-in address is compared with the reserved Broadcast and Multi-cast ad- dresses. If an address match is detected, the ’PSC110F-selection state-machine enters one of the two se- lected states. If the scanned address does not match a valid single-slot address or one of the reserved broadcast/ multi-cast addresses, the ’PSC110F-selection state-machine enters the Unselected state. Note that the SLOT inputs should not be set to a value cor- responding to a multi-cast group,ortothe broadcast ad- dress. Also note that the single-’PSC110F selection process must be performed for all ’PSC110Fs which are subse- quently to be addressed in multi-cast mode. This is required because each such device’s Multi-cast Group Register (MCGR) must be programmed with a multi-cast group num- ber, and the MCGR is not accessible to the test controller un- til that ’PSC110F has first entered the Selected-Single-’PSC110F state. Once a ’PSC110F has been selected, Level-2 protocol is used to issue commands and to access the chip’s various registers. Register Set The SCANPSC110F Bridge includes a number of registers which are used for ’PSC110F selection and configuration, scan data manipulation, and scan-support operations. These registers can be grouped as shown in Table 3. The specific fields and functions of each of these registers are detailed in the section of this document titled “Data Reg- ister Descriptions”. Note that when any of these registers is selected for inser- tion into the ’PSC110F’s scan-chain, scan data enters through that register’s most-significant bit. Similarly, data that is shifted out of the register is fed to the scan input of the next-downstream device in the scan-chain. TABLE 3. Registers Register Name BSDL Name Description Instruction Register INSTRUCTION ’PSC110F addressing and instruction-decode IEEE Std. 1149.1 required register Boundary-Scan Register BOUNDARY IEEE Std. 1149.1 required register Bypass Register BYPASS IEEE Std. 1149.1 required register Device Identification Register IDCODE IEEE Std. 1149.1 optional register Multi-Cast Group Register MCGR ’PSC110F-group address assignment Mode Register MODE ’PSC110F local-port configuration and control bits Linear-Feedback Shift Register LFSR ’PSC110F scan-data compaction (signature generation) TCK Counter Register CNTR Local-port TCK clock-gating (for BIST) Addressing Scheme The SCANPSC110F Bridge architecture extends the func- tionality of the IEEE 1149.1 Standard by supplementing that protocol with an addressing scheme which allows a test con- troller to communicate with specific ’PSC110Fs within a net- work of ’PSC110Fs. That network can include both multi-drop and hierarchical connectivity. In effect, the ’PSC110F architecture allows a test controller to dynamically select specific portions of such a network for participation in scan operations. This allows a complex system to be parti- tioned into smaller blocks for testing purposes. The ’PSC110F provides two levels of test-network partition- ing capability. First, a test controller can select entire indi- vidual ’PSC110Fs, specific sets of ’PSC110Fs (multi-cast groups), or all ’PSC110Fs (broadcast). This ’PSC110F-selection process is supported by a “Level-1” communication protocol. Second, within each selected ’PSC110F, a test controller can select one or more of the chip’s three local scan-ports. That is, individual local ports can be selected for inclusion in the (single) scan-chain which a ’PSC110F presents to the test controller. This mechanism allows a controller to select specific terminal scan-chains within the overall scan network. The port-selection process is supported by a “Level-2” protocol. www.national.com 8 |
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