In this paper we present three algorithms that provide performance guarantees for scheduling switches, such as optical switches, with configuration overhead. Each algorithm emulates an unconstrained (zero overhead) switch by accumulating a batch of configuration requests and generating a corresponding schedule for a constrained switch. Speedup is required both to cover the configuration overhead of the switch and to compensate for empty slots left by the scheduling algorithm. Scheduling algorithms are characterized by the number of configurations, Ns , they require to cover a batch of requests, and the speedup required to compensate for empty slots, S min . We show that a well known exact matching algorithm, EXACT, leaves no empty slots (i....
The delay and throughput characteristics of a packet switch de-pend mainly on the queueing scheme an...
Abstract. Optical switching cores are fast gaining importance for de-ployment in internet switches/r...
In Session: Next Generation Networks: NXG-05: Switching and Routing-I: article no. NXG05-6A hybrid e...
Abstract—In this paper, we present three algorithms that provide performance guarantees for scheduli...
Abstract—We consider traffic scheduling in an packet switch with an optical switch fabric, where the...
We consider traffic scheduling in an N x N packet switch with an optical switch fabric, where the fa...
We consider traffic scheduling in an N × N packet switch with an optical switch fabric, where the fa...
Abstract—In order to achieve the minimum traffic delay in a performance guaranteed optical packet sw...
We consider traffic scheduling in performance guaranteed switches with optical fabrics to ensure 100...
In order to achieve the minimum traffic delay in a performance guaranteed optical packet switch (OPS...
Abstract — Many high-speed routers today use Input-Queued (IQ) architectures with a crossbar switchi...
Scheduling optical packet switches with minimum configurations has been proven to be NT-complete. Mo...
Abstract — Many high-speed routers today use Input-Queued (IQ) architectures with a crossbar switchi...
Hybrid architectures with electronic buffering/processing and optical switching fabric are receiving...
We consider traffic scheduling in non-blocking electronic-buffered optical packet switches (OPS) wit...
The delay and throughput characteristics of a packet switch de-pend mainly on the queueing scheme an...
Abstract. Optical switching cores are fast gaining importance for de-ployment in internet switches/r...
In Session: Next Generation Networks: NXG-05: Switching and Routing-I: article no. NXG05-6A hybrid e...
Abstract—In this paper, we present three algorithms that provide performance guarantees for scheduli...
Abstract—We consider traffic scheduling in an packet switch with an optical switch fabric, where the...
We consider traffic scheduling in an N x N packet switch with an optical switch fabric, where the fa...
We consider traffic scheduling in an N × N packet switch with an optical switch fabric, where the fa...
Abstract—In order to achieve the minimum traffic delay in a performance guaranteed optical packet sw...
We consider traffic scheduling in performance guaranteed switches with optical fabrics to ensure 100...
In order to achieve the minimum traffic delay in a performance guaranteed optical packet switch (OPS...
Abstract — Many high-speed routers today use Input-Queued (IQ) architectures with a crossbar switchi...
Scheduling optical packet switches with minimum configurations has been proven to be NT-complete. Mo...
Abstract — Many high-speed routers today use Input-Queued (IQ) architectures with a crossbar switchi...
Hybrid architectures with electronic buffering/processing and optical switching fabric are receiving...
We consider traffic scheduling in non-blocking electronic-buffered optical packet switches (OPS) wit...
The delay and throughput characteristics of a packet switch de-pend mainly on the queueing scheme an...
Abstract. Optical switching cores are fast gaining importance for de-ployment in internet switches/r...
In Session: Next Generation Networks: NXG-05: Switching and Routing-I: article no. NXG05-6A hybrid e...