ZL50408GDC ZARLINK [Zarlink Semiconductor Inc], ZL50408GDC Datasheet - Page 43

no-image

ZL50408GDC

Manufacturer Part Number
ZL50408GDC
Description
Managed 8-Port 10/100M 1-Port 10/100/1000M Ethernet Switch
Manufacturer
ZARLINK [Zarlink Semiconductor Inc]
Datasheet
The following registers define the size of each section of the Frame data Buffer:
See Buffer Allocation application note, ZLAN-47, for more information.
7.6.1
As already discussed, the WRED mechanism may drop frames on output queue status. In addition to these
reasons for dropping, we also drop frames when global buffer space becomes scarce. The function of buffer
management is to make sure that such dropping causes as little blocking as possible. If a received frame is
dispatched to the best effort queue, the buffer management will check on the overall buffer situation plus the output
queue status to decide the frame drop condition. If the source port has not enough buffer for it, the frame will be
dropped. If the output queue reach the UCC (unicast congest control) and the shared buffer has run out, the frame
will be dropped by b%. If the output queue reach the UCC and the source port reservation is lower than the buffer
low threshold, the frame will be dropped. All the dropping functions are disabled if the source port is flow control
capable.
7.7
Because frame loss is unacceptable for some applications, the ZL50408 provides a flow control option. When flow
control is enabled, scarcity of source port buffer space may trigger a flow control signal; this signal tells a source
port sending a packet to this switch, to temporarily hold off.
While flow control offers the clear benefit of no packet loss, it also introduces a problem for quality of service. When
a source port receives an Ethernet flow control signal, all microflows originating at that port, well-behaved or not,
are halted. A single packet destined for a congested output can block other packets destined for un-congested
outputs. The resulting head-of-line blocking phenomenon means that quality of service cannot be assured with high
confidence when flow control is enabled.
On the other hand, the ZL50408 will still prioritize the received frame disregarding the outgoing port flow control
capability. If a frame is classified as high priority, it is still subjected to the WRED, which means the no-loss on the
high priority queue is not guaranteed. To resolve this situation, the user may set the output port WRED threshold so
high that may never be reached, or program the priority mapping table in the queue manager to map all the traffic to
best effort queue on the flow control capable port. The first method has side impact on the global resource
-
-
-
-
-
-
-
Per Source Port
Flow Control Basics
PR100_N - Port Reservation for RMAC Ports
PR100_CPU - Port Reservation for CPU Port
PRG - Port Reservation for GMAC Port
SFCB - Share FCB Size
C1RS - Class 1 Reserve Size (priority 2 & 3)
C2RS - Class 2 Reserve Size (priority 4 & 5)
C3RS - Class 3 Reserve Size (priority 6 & 7)
Reservation
Reservation
Dropping When Buffers Are Scarce
Per Class
R
R
p0
pri1
Figure 11 - Buffer Partition Scheme
R
p1
R
Zarlink Semiconductor Inc.
pri2
R
ZL50408
p2
43
R
R
pri3
Temporary reservation
p3
R
p4
R
p5
Shared Pool S
R
p6
R
p7
(CPU)
R
p8
Data Sheet
R
p9

Related parts for ZL50408GDC