参数资料
型号: NOIV1SE025KA-GDC
厂商: ON Semiconductor
文件页数: 20/76页
文件大小: 0K
描述: IC IMAGE SENSOR 25MP 355PGA
标准包装: 14
系列: *
象素大小: 4.5µm x 4.5µm
有源象素阵列: 5120H x 5120V
每秒帧数: 53
类型: CMOS 成像
封装/外壳: *
供应商设备封装: *
包装: *
NOIV1SN025KA
Time Line
Frame N
Frame N+1
?Frame N+2
? Frame N+3
? Frame N+4
sync_configuration
This configuration is not taken into
account as sync_register is inactive.
SPI Registers
Active Registers
Figure 16. Reconfiguration Using Sync_configuration
NOTE: SPI updates are not taken into account while sync_configuration is inactive. The active configuration is frozen
for the sensor. Table 19 lists the several sync_configuration possibilities along with the respective registers being
frozen.
Table 19. ALTERNATE SYNC CONFIGURATIONS
Group
sync_rs_x_length
sync_black_lines
sync_dummy_lines
sync_exposure
sync_gain
sync_roi
Affected Registers
rs_x_length
black_lines
dummy_lines
mult_timer
fr_length
exposure
mux_gainsw
afe_gain
roi_active0[15:0]
roi_active1[15:0]
subsampling
binning
Description
Update of x-length configuration (rolling shutter only) is not synchronized at start of
frame when ‘0’. The sensor continues with its previous configurations.
Update of black line configuration is not synchronized at start of frame when ‘0’. The
sensor continues with its previous configurations.
Update of dummy line configuration is not synchronized at start of frame when ‘0’. The
sensor continues with its previous configurations.
Update of exposure configurations is not synchronized at start of frame when ‘0’. The
sensor continues with its previous configurations.
Update of gain configurations is not synchronized at start of frame when ‘0’. The
sensor continues with its previous configurations.
Update of active ROI configurations is not synchronized at start of frame when ‘0’. The
sensor continues with its previous configurations.
Note: The window configurations themselves are not frozen. Re-configuration of act-
ive windows is not gated by this setting.
Window Configuration
Global Shutter Mode
Up to 32 windows can be defined in global shutter mode
(pipelined or triggered). The windows are defined by
registers 256 to 351. Each window can be activated or
deactivated separately using registers 195 and 196. It is
possible to reconfigure the inactive windows while
acquiring images. Switching between prederfined windows
is achieved by activation of the respective windows. This
way a minimum number of registers need to be uploaded
when it is necessary to switch between two or more sets of
windows. As an example of this, scanning the scene at
higher frame rates using multiple windows and switching to
full frame capture when the object is tracked. Switching
between the two modes only requires an upload of one (if the
total number of windows is smaller than 17) or two (if more
than 16 windows are defined) registers.
Rolling Shutter Mode
In rolling shutter mode it is not possible to read multiple
windows. Do not activate more than one window (registers
205–206). However, it is possible to configure more than
one window and dynamically switch between the different
window configurations. Note that switching between two
different windows might result in a corrupted frame. This is
inherent in the rolling shutter mechanism, where each line
must be reset sequentially before being read out. This
corrupted window can be blanked out by setting register
206[8]. In this case, a dead time is noted on the LVDS
interface when the window-switch occurs in the sensor.
During this blank out, training patterns are sent out on the
data and sync channels for the duration of one frame.
Black Calibration
The sensor automatically calibrates the black level for
each frame. Therefore, the device generates a configurable
number of electrical black lines at the start of each frame.
The desired black level in the resulting output interface can
be configured and is not necessarily targeted to ‘0’.
Configuring the target to a higher level yields some
information on the left side of the black level distribution,
while the other end of the distribution tail is clipped to ‘0’
when setting the black level target to ‘0’.
The black level is calibrated for the 64 columns contained
in one kernel. This implies 64 black level offsets are
generated and applied to the corresponding columns.
Configurable parameters for the black-level algorithm are
listed in Table 20.
http://onsemi.com
20
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