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  1. (Digital Solution Laboratory, KEPCO Research Institute, Korea.)



Neural Network, Multi-Layer Perceptron, Prediction, Photovoltaic Power Generation, Energy Storage System

1. ์„œ ๋ก 

์ •๋ถ€๋Š” 2050 ํƒ„์†Œ์ค‘๋ฆฝ ๋‹ฌ์„ฑ์„ ์œ„ํ•ด ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์„ ์ง€์†์ ์œผ๋กœ ํ™•๋Œ€ํ•  ์˜ˆ์ •์œผ๋กœ 2036๋…„๊นŒ์ง€ 108GW๋กœ 23๋…„ ๋Œ€๋น„ 3๋ฐฐ ์ •๋„ ์ฆ๊ฐ€ํ•  ๊ฒƒ์œผ๋กœ ์˜ˆ์ƒํ•˜๊ณ  ์žˆ๋‹ค[1]. ์ „๋ ฅ์‚ฌ๋Š” ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์˜ ๊ธ‰๊ฒฉํ•œ ์ฆ๊ฐ€๋กœ ์ธํ•œ ์ˆ˜์šฉ ํ•œ๊ณ„๋ฅผ ๊ทน๋ณตํ•˜๊ธฐ ์œ„ํ•ด ์ „๋ ฅ์„ค๋น„๋ฅผ ์ฆ์„คํ•˜๊ฑฐ๋‚˜ ๋Œ€์ฒด ๊ธฐ์ˆ  ๋„์ž…์„ ํ†ตํ•ด ์‹ ์žฌ์ƒ ์ˆ˜์šฉ ๋Šฅ๋ ฅ์„ ํ–ฅ์ƒ์‹œํ‚ค๊ธฐ ์œ„ํ•ด ๋…ธ๋ ฅํ•˜๊ณ  ์žˆ๋‹ค. ๊ธฐ์กด์˜ ๋ณ€์ „์†Œ ์šด์˜๋ฐฉ์‹์€ ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์— ๋Œ€ํ•œ ์ ‘์†ํ—ˆ์šฉ ์šฉ๋Ÿ‰์„ ์ „๋ ฅ์˜ ์•ˆ์ •์ ์ธ ๊ณต๊ธ‰์„ ์œ„ํ•ด ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์˜ ์„ค๋น„์šฉ๋Ÿ‰์„ ๊ธฐ์ค€์œผ๋กœ ์‚ฐ์ •ํ•˜์˜€๋‹ค. ์ตœ๊ทผ ๋“ค์–ด ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์ด ๊ธ‰๊ฒฉํžˆ ์ฆ๊ฐ€ํ•˜๋ฉด์„œ ์ฃผ๋ณ€์••๊ธฐ์˜ ์ ‘์†ํ—ˆ์šฉ ์šฉ๋Ÿ‰์„ ์ดˆ๊ณผํ•˜๋Š” ์ƒํ™ฉ์ด ๋ฐœ์ƒํ•˜๊ณ  ์žˆ์œผ๋‚˜ ๋ณ€์ „์†Œ ์ฆ์„ค์ด ์–ด๋ ค์›Œ ์ถ”๊ฐ€์ ์ธ ์Šน์ธ์ด ์–ด๋ ค์šด ์ƒํ™ฉ์ด๋‹ค. ์ด๋ฅผ ํ•ด๊ฒฐํ•˜๊ธฐ ์œ„ํ•ด ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์˜ ์„ค๋น„์šฉ๋Ÿ‰์ด ์•„๋‹Œ ์‹œ๊ฐ„์— ๋”ฐ๋ฅธ ์˜ˆ์ƒ ๋ฐœ์ „๋Ÿ‰์„ ๊ณ ๋ คํ•˜์—ฌ ๊ณ„ํ†ต์ œ์•ฝ์ด ๋ฐœ์ƒํ•˜๋Š” ๊ฒฝ์šฐ ์ผ๋ถ€ ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์˜ ์ถœ๋ ฅ์„ ์ œ์–ดํ•˜๋Š” ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์ด ์—ฐ๊ตฌ๋˜๊ณ  ์žˆ๋‹ค[2,3]. ๋˜ํ•œ ๋งˆ์ดํฌ๋กœ๊ทธ๋ฆฌ๋“œ๋ฅผ ๊ตฌ์„ฑํ•˜์—ฌ ์ „๋ ฅ๋ง๊ณผ ์ž์ฒด ๊ตฌ์ถ•ํ•œ ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์„ ํ˜‘์กฐ ์šด์ „ํ•˜๋Š” ์—ฐ๊ตฌ๋„ ์ง„ํ–‰๋˜๊ณ  ์žˆ๋‹ค[4].

์ฃผ๋ณ€์••๊ธฐ๋ฅผ ๊ธฐ์ค€์œผ๋กœ ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์„ ์šด์˜ํ•˜๊ธฐ ์œ„ํ•ด์„œ๋Š” ์ฃผ๋ณ€์••๊ธฐ์— ์—ฐ๊ฒฐ๋œ ๊ณ ๊ฐ์˜ ์‚ฌ์šฉ๋Ÿ‰๊ณผ ์‹ ์žฌ์ƒ ๋ฐœ์ „๋Ÿ‰์„ ์ˆ˜์ง‘ํ•˜์—ฌ ๋ถ„์„ํ•˜๊ณ , ์ถœ๋ ฅ์ œ์–ด ์ƒํ™ฉ์ด ๋ฐœ์ƒํ•  ๊ฐ€๋Šฅ์„ฑ์„ ํŒ๋‹จํ•  ์ˆ˜ ์žˆ๋„๋ก ์ฃผ๋ณ€์••๊ธฐ์˜ ์ˆœ๋ถ€ํ•˜๋ฅผ ์˜ˆ์ธกํ•˜๋Š” ๊ธฐ์ˆ ์ด ํ•„์š”ํ•˜๋‹ค[5]. ๊ทธ๋ฆผ 1์€ ์ฃผ๋ณ€์••๊ธฐ์˜ ์ˆœ๋ถ€ํ•˜๋ฅผ ์˜ˆ์ธกํ•˜๊ธฐ ์œ„ํ•ด ํ•„์š”ํ•œ ์‹ค๋ถ€ํ•˜ ๋ฐ ๋ฐœ์ „๋Ÿ‰์„ ์˜ˆ์ธกํ•˜๋Š” ๋ฐฉ๋ฒ•์„ ๋‚˜ํƒ€๋‚ธ๋‹ค. ๋ฐœ์ „ ์˜ˆ์ธก๋Ÿ‰์€ ๊ธฐ์กด์— ๊ณ„์ธก๋œ ์‹ ์žฌ์ƒ ๋ฐœ์ „๋Ÿ‰๊ณผ ๊ณ„์ธก๋˜์ง€ ์•Š๋Š” ์‹ ์žฌ์ƒ ์˜ˆ์ธก ๋ฐœ์ „๋Ÿ‰์„ ์ด์šฉํ•˜์—ฌ ๊ณ„์‚ฐ๋œ๋‹ค.

๊ทธ๋ฆผ 1. ์ฃผ๋ณ€์••๊ธฐ์˜ ์ˆœ๋ถ€ํ•˜ ์˜ˆ์ธก ๋ฐฉ๋ฒ•

Fig. 1. Prediction method of net load for transformer

../../Resources/kiee/KIEE.2024.73.12.2180/fig1.png

ํ˜„์žฌ ๊ฒ€์นจ ์ค‘์ธ ์‹ ์žฌ์ƒ ๋ฐœ์ „๋Ÿ‰์˜ ๋Œ€๋ถ€๋ถ„์€ ํƒœ์–‘๊ด‘์ด๋ฉฐ, ์ด ์ค‘์—์„œ 15% ์ •๋„๋Š” ESS๊ฐ€ ์—ฐ๊ณ„๋œ ํƒœ์–‘๊ด‘ ๋ฐœ์ „์›์ด๋‹ค. ESS๊ฐ€ ์—ฐ๊ณ„๋˜์ง€ ์•Š์€ ํƒœ์–‘๊ด‘์— ๋Œ€ํ•œ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก์€ ํ™œ๋ฐœํžˆ ์ง„ํ–‰๋˜๊ณ  ์žˆ์œผ๋‚˜ ESS๊ฐ€ ์—ฐ๊ณ„๋œ ํƒœ์–‘๊ด‘์— ๋Œ€ํ•œ ESS์˜ ์ถœ๋ ฅ์ด ๋ฐ˜์˜๋œ ๋ฐœ์ „๋Ÿ‰์— ๋Œ€ํ•œ ์˜ˆ์ธก์€ ๋ฏธ๋น„ํ•œ ์ƒํ™ฉ์ด๋‹ค[6,7]. ๋ณธ ๋…ผ๋ฌธ์—์„œ๋Š” ์ฃผ๋ณ€์••๊ธฐ์˜ ์ˆœ๋ถ€ํ•˜ ์˜ˆ์ธก์„ ์œ„ํ•ด ํ•„์š”ํ•œ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์— ๋Œ€ํ•œ ๋ฐœ์ „๋Ÿ‰์„ ์ธ๊ณต์‹ ๊ฒฝ๋ง ๊ธฐ๋ฐ˜์˜ MLP ๋ชจ๋ธ์„ ํ†ตํ•ด ์˜ˆ์ธกํ•˜๋Š” ๋ฐฉ๋ฒ•์„ ์—ฐ๊ตฌํ•˜์˜€๋‹ค[8].

2. ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐ ์‹ ์žฌ์ƒ ์œ ์—ฐ์ ‘์† ์šด์˜

2.1 ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰ ๊ฐœ์š”

์‹ ์žฌ์ƒ์—๋„ˆ์ง€ ๊ณต๊ธ‰์˜๋ฌดํ™” ์ œ๋„์— ๋”ฐ๋ฅด๋ฉด ํƒœ์–‘๊ด‘์˜ ์ถœ๋ ฅ ๋ณ€๋™์„ฑ์„ ์™„ํ™”ํ•˜๊ธฐ ์œ„ํ•ด ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์„ ์ €์žฅํ•  ์ˆ˜ ์žˆ๋Š” ESS๋ฅผ ์„ค์น˜ํ•  ๊ฒฝ์šฐ REC๋ฅผ 5๋ฐฐ๊นŒ์ง€ ์ง€๊ธ‰ ๋ฐ›์„ ์ˆ˜ ์žˆ์–ด, ESS๋ฅผ ์—ฐ๊ฒฐํ•˜์—ฌ ์‹ ์žฌ์ƒ ์—๋„ˆ์ง€๋ฅผ ์ตœ์  ์šด์˜ํ•˜๊ธฐ ์œ„ํ•œ ์—ฐ๊ตฌ๋ฅผ ๋งŽ์€ ๊ณณ์—์„œ ์ง„ํ–‰ํ•˜๊ณ  ์žˆ๋‹ค[9]. ๋‹ค๋งŒ ๊ตญ๋‚ด์˜ ๊ฒฝ์šฐ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์ด ESS์— ๋Œ€ํ•œ ์ธ์„ผํ‹ฐ๋ธŒ๋ฅผ ๋ฐ›๊ธฐ ์œ„ํ•ด์„œ๋Š” 10์‹œ๋ถ€ํ„ฐ 16์‹œ๊นŒ์ง€๋งŒ ์ถฉ์ „์„ ํ•ด์•ผ ํ•˜๋ฉฐ, ๊ทธ ์™ธ ์‹œ๊ฐ„๋Œ€์—๋Š” ๋ฐฉ์ „ํ•˜๋Š” ๋ฐฉ์‹์œผ๋กœ ์šด์˜ํ•ด์•ผ๋งŒ ํ•˜๋Š” ์ œ์•ฝ์‚ฌํ•ญ์ด ์žˆ๋‹ค.

๊ทธ๋ฆผ 2. ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰(๋ถ„ํ™์„ )

Fig. 2. PV power generation with ESS(pink line)

../../Resources/kiee/KIEE.2024.73.12.2180/fig2.png

๊ทธ๋ฆผ 2๋Š” ๋…ผ๋ฌธ [10]์—์„œ ๋ถ„์„ํ•œ ESS ์ตœ์ ์šด์˜ ์Šค์ผ€์ค„๋ง ์‚ฌ๋ก€๋กœ, ๋ถ„ํ™์ƒ‰ ์„ ์€ ๊ณ„ํ†ต์œผ๋กœ ๊ณต๊ธ‰๋˜๋Š” ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰์„ ๋‚˜ํƒ€๋‚ด๋ฉฐ, ๊ฒ€์€์ƒ‰ ์„ ์€ ESS๊ฐ€ ์—†๋Š” ์ˆœ์ˆ˜ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰์„ ๋‚˜ํƒ€๋‚ธ๋‹ค. ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰์„ ์‚ดํŽด๋ณด๋ฉด, 10์‹œ ์ „๊นŒ์ง€๋Š” ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์„ ESS ์ถฉ์ „ ์—†์ด ๊ณ„ํ†ต์œผ๋กœ ๋ชจ๋‘ ๋ณด๋‚ด๊ณ  ์žˆ๊ณ , ESS ์ถฉ์ „์ด ํ—ˆ์šฉ๋˜๋Š” 10์‹œ๋ถ€ํ„ฐ ESS๊ฐ€ ์™„์ถฉ๋˜๋Š” 14์‹œ 30๋ถ„๊นŒ์ง€ ESS๋ฅผ ์ถฉ์ „ํ•˜๋ฉฐ, 17์‹œ๋ถ€ํ„ฐ 19์‹œ 30๋ถ„๊นŒ์ง€ ์•ฝ 2์‹œ๊ฐ„ 30๋ถ„ ๋™์•ˆ ๋ฐฉ์ „ํ•˜๋Š” ๊ฒƒ์„ ์•Œ ์ˆ˜ ์žˆ๋‹ค.

๊ทธ๋ฆผ 3์€ ์ผ์‚ฌ๋Ÿ‰์˜ ๋ณ€ํ™”์— ๋”ฐ๋ฅธ ESS ๋ฏธ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘๊ณผ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰์„ ๋น„๊ตํ•˜๋Š” ๊ทธ๋ž˜ํ”„์ด๋‹ค. ํƒœ์–‘๊ด‘๋งŒ์œผ๋กœ ๋ฐœ์ „ํ•˜๋Š” ๊ฒฝ์šฐ์—๋Š” ๋ฐœ์ „๋Ÿ‰์ด ์ผ์‚ฌ๋Ÿ‰์— ๋น„๋ก€ํ•˜์—ฌ ๋ณ€ํ•˜๊ธฐ ๋•Œ๋ฌธ์— ์˜ˆ์ธก์ด ์‰ฌ์šด ๋ฐ˜๋ฉด์—, ESS๊ฐ€ ์—ฐ๊ณ„๋œ ํƒœ์–‘๊ด‘์˜ ๊ฒฝ์šฐ์—๋Š” ์ผ์‚ฌ๋Ÿ‰ ์™ธ์—๋„ ๋ฐœ์ „์†Œ์˜ ์œ„์น˜๋‚˜ ํƒœ์–‘๊ด‘/ESS์˜ ์„ค๋น„์šฉ๋Ÿ‰, ๋ฐœ์ „์‚ฌ์˜ ESS ์ถฉ๋ฐฉ์ „ ์šด์˜๋ฐฉ์‹์— ๋”ฐ๋ผ ๋‹ฌ๋ผ์ง€๋ฏ€๋กœ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก์ด ์–ด๋ ต๊ฒŒ ๋œ๋‹ค. ํŠนํžˆ ํƒœ์–‘๊ด‘ ๋ฐœ์ „์˜ ๊ฒฝ์šฐ 14์‹œ ์ดํ›„๋กœ ๋ฐœ์ „๋Ÿ‰์ด ์ผ์‚ฌ๋Ÿ‰์— ๋น„๋ก€ํ•˜์—ฌ ์ง€์†์ ์œผ๋กœ ์ค„์–ด๋“œ๋Š” ๋ฐ˜๋ฉด์—, ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๊ฒฝ์šฐ 16์‹œ ์ดํ›„๋กœ ์ผ์‚ฌ๋Ÿ‰๊ณผ ๊ด€๊ณ„์—†์ด ์˜ˆ์ธกํ•˜๊ธฐ ์–ด๋ ค์šด ํ˜•ํƒœ๋กœ ์ถœ๋ ฅ์ด ์ฆ๊ฐ€ ๋˜๋Š” ๊ฐ์†Œํ•˜๊ฒŒ ๋˜์–ด ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์ด ์ง€์†์ ์œผ๋กœ ๋Š˜์–ด๋‚  ๊ฒฝ์šฐ ์ „๋ ฅ๊ณ„ํ†ต์„ ์•ˆ์ •์ ์œผ๋กœ ์šด์˜ํ•˜๋Š”๋ฐ ๋งŽ์€ ์–ด๋ ค์›€์„ ๊ฒช๊ฒŒ ๋œ๋‹ค.

๊ทธ๋ฆผ 3. ์ผ์‚ฌ๋Ÿ‰์— ๋”ฐ๋ฅธ ํƒœ์–‘๊ด‘(ESS ๋ฏธ์—ฐ๊ณ„/์—ฐ๊ณ„) ๋ฐœ์ „๋Ÿ‰

Fig. 3. PV generation based on solar irradiance (without/with ESS)

../../Resources/kiee/KIEE.2024.73.12.2180/fig3.png

2.2 ์ฃผ๋ณ€์••๊ธฐ ์‹ ์žฌ์ƒ ์œ ์—ฐ์ ‘์† ๊ฐ€๋Šฅ์šฉ๋Ÿ‰ ๋ถ„์„ ์‚ฌ๋ก€

๋ณ€์ „์†Œ์—์„œ ์‹ ์žฌ์ƒ ์—๋„ˆ์ง€์›์„ ์ˆ˜์šฉํ•˜๊ธฐ ์œ„ํ•ด์„œ๋Š” ์ฃผ๋ณ€์••๊ธฐ ๋ณ„๋กœ ์ ‘์† ๊ฐ€๋Šฅํ•œ ์‹ ์žฌ์ƒ ์šฉ๋Ÿ‰์„ ๊ฒฐ์ •ํ•˜์—ฌ ์šด์˜ํ•ด์•ผ ํ•œ๋‹ค. ์ผ๋ฐ˜์ ์ธ ์‚ฐ์ •๋ฐฉ์‹์€ ์ฃผ๋ณ€์••๊ธฐ๋ณ„ ์ •๊ฒฉ์šฉ๋Ÿ‰์— ์•ˆ์ „๋งˆ์ง„์„ ๊ณ ๋ คํ•˜์—ฌ ์ ‘์†ํ—ˆ์šฉ ์šฉ๋Ÿ‰์„ ์‚ฐ์ •ํ•˜๊ณ  ํ•ด๋‹น ์šฉ๋Ÿ‰ ๋งŒํผ์˜ ์‹ ์žฌ์ƒ์„ ์—ฐ๊ณ„ํ•˜์—ฌ ์šด์˜ํ•˜๊ฒŒ ๋œ๋‹ค. ๊ทธ๋Ÿฌ๋‚˜ ์ตœ๊ทผ ๋“ค์–ด ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์ด ๊ธ‰๊ฒฉํžˆ ์ฆ๊ฐ€ํ•˜๊ณ  ์žˆ์œผ๋‚˜ ๋ณ€์ „์„ค๋น„ ์ฆ์„ค์ด ์ด๋ฅผ ๋”ฐ๋ผ๊ฐ€์ง€ ๋ชปํ•ด ๊ณ„ํ†ต ์ ‘์†์„ ๋Œ€๊ธฐํ•˜๊ณ  ์žˆ๋Š” ์—๋„ˆ์ง€์›์ด ์ฆ๊ฐ€ํ•˜๊ณ  ์žˆ๋‹ค. ์ด๋ฅผ ํ•ด๊ฒฐํ•˜๊ธฐ ์œ„ํ•ด ์ฃผ๋ณ€์••๊ธฐ ๋ณ„๋กœ ๊ณ ๊ฐ ๋ถ€ํ•˜๋ฅผ ๊ณ ๋ คํ•˜์—ฌ ์‹ ์žฌ์ƒ ์ ‘์†์šฉ๋Ÿ‰์„ ๋‹ค๋ฅด๊ฒŒ ๊ฐ€์ ธ๊ฐ€๋Š” ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์„ ๊ณ ๋ คํ•˜๊ณ  ์žˆ๋‹ค.

๊ทธ๋ฆผ 4. ์ฃผ๋ณ€์••๊ธฐ ์‹ ์žฌ์ƒ ์ ‘์†ํ—ˆ์šฉ ๋ฐฉ์‹ ๋น„๊ต

Fig. 4. Comparison of method for renewable energy connection to transformer

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๋ณ€์ „์†Œ๋ฅผ ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์œผ๋กœ ์šด์˜ํ•˜๊ธฐ ์œ„ํ•ด์„œ๋Š” ๋ณต์žกํ•œ ์šด์ „ ์š”๊ฑด๋“ค์ด ์žˆ์œผ๋‚˜ ๋‹จ์ˆœํ™”ํ•˜์—ฌ ์„ค๋ช…ํ•˜๋ฉด, ๊ธฐ์กด ์ ‘์†ํ—ˆ์šฉ ๋ฐฉ์‹์€ ์•ˆ์ •์ ์ธ ๊ณ„ํ†ต ์šด์˜์„ ์œ„ํ•ด ์ฃผ๋ณ€์••๊ธฐ์˜ ์šด์ „์šฉ๋Ÿ‰์ด 50MW์ธ ๊ฒฝ์šฐ ์‹ ์žฌ์ƒ ๋ฐœ์ „์›์ด ์ฃผ๋ณ€์••๊ธฐ๋กœ 50MW ์ด์ƒ์˜ ์ „๋ ฅ์„ ๋ณด๋‚ด์ง€ ๋ชปํ•˜๋„๋ก ์‹ ์žฌ์ƒ ์„ค๋น„๋ฅผ 50MW๊นŒ์ง€๋งŒ ์ ‘์†ํ•˜๋„๋ก ํ—ˆ์šฉํ•˜๋Š” ๋ฐฉ์‹์ด๋‹ค. ์ด ์ฃผ๋ณ€์••๊ธฐ์— ์ตœ์†Œ 30MW์˜ ์ „๋ ฅ์„ ์†Œ๋ชจํ•˜๋Š” ๊ณ ๊ฐ์ด ์—ฐ๊ฒฐ๋œ ๊ฒฝ์šฐ ์‹ค์ œ๋กœ ์ฃผ๋ณ€์••๊ธฐ๋กœ ์œ ์ž…๋˜๋Š” ์‹ ์žฌ์ƒ ๋ฐœ์ „๋Ÿ‰์€ ๋ฐœ์ „๋Ÿ‰ 50MW ์ค‘์—์„œ ๊ณ ๊ฐ์ด 30MW๋ฅผ ์†Œ๋น„ํ•˜๊ณ  ๋‚จ์€ 20MW๋งŒ ์—ฐ๊ณ„๋˜๊ฒŒ ๋œ๋‹ค. ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์€ ์‹ ์žฌ์ƒ ๋ฐœ์ „๋Ÿ‰์—์„œ ๊ณ ๊ฐ์˜ ๋ถ€ํ•˜๋ฅผ ๋บ€ ์—ญ์†ก๋Ÿ‰์ด ์ฃผ๋ณ€์••๊ธฐ์˜ ์šด์ „์šฉ๋Ÿ‰์„ ์ดˆ๊ณผํ•˜์ง€ ์•Š๋Š” ๋ฒ”์œ„ ๋‚ด์—์„œ ์ ‘์†์„ ํ—ˆ์šฉํ•˜๋Š” ๋ฐฉ์‹์œผ๋กœ ์œ ์—ฐ์ ‘์† ๋ฐฉ์‹์„ ์‚ฌ์šฉํ•  ๊ฒฝ์šฐ ๊ธฐ์กด๋ณด๋‹ค ๋งŽ์€ ์‹ ์žฌ์ƒ ์—๋„ˆ์ง€์›์„ ์—ฐ๊ณ„ํ•  ์ˆ˜ ์žˆ๊ฒŒ ๋œ๋‹ค. ๊ทธ๋Ÿฌ๋‚˜ ์ด๋Ÿฌํ•œ ๊ฒฝ์šฐ์—๋„ ๋ณ€์ „์†Œ ๋‚ด์˜ ๋‹ค๋ฅธ ์ฃผ๋ณ€์••๊ธฐ์˜ ๊ณ ์žฅ์— ๋Œ€์‘ํ•  ์ˆ˜ ์žˆ๋Š” ์—ฌ์œ  ์šฉ๋Ÿ‰, ๊ณ ๊ฐ์˜ ์ตœ์†Œ๋ถ€ํ•˜ ๊ฐ์†Œ, ์‹ ์žฌ์ƒ ๋ณ€๋™์„ฑ์— ๋”ฐ๋ฅธ ์ถœ๋ ฅ์ œ์–ด ๋“ฑ์„ ๊ณ ๋ คํ•˜์—ฌ ์œ ์—ฐ์ ‘์† ์šฉ๋Ÿ‰์„ ์„ ์ •ํ•˜๊ฒŒ ๋œ๋‹ค. ์•„๋ž˜ ํ‘œ๋Š” ํŠน์ • ๋ณ€์ „์†Œ๋ฅผ ๋Œ€์ƒ์œผ๋กœ ๊ธฐ์กด ์ ‘์†๋ฐฉ์‹๊ณผ ์œ ์—ฐ์ ‘์† ์ ์šฉ์— ๋”ฐ๋ผ ์˜ˆ์ƒ๋˜๋Š” ์ตœ๋Œ€์ ‘์†์šฉ๋Ÿ‰์„ ๋ถ„์„ํ•œ ์‚ฌ๋ก€๋ฅผ ๋ณด์—ฌ์ค€๋‹ค.

ํ‘œ 1 ์œ ์—ฐ์ ‘์†์„ ์ ์šฉํ•œ ์ตœ๋Œ€์ ‘์†์šฉ๋Ÿ‰ ๋ถ„์„ ์‚ฌ๋ก€

Table 1 Maxinum connection capacity analysis with flexible connection

MT.r #1

MT.r #2

MT.r #3

MT.r #4

๊ธฐ์กด ์ ‘์†ํ—ˆ์šฉ์šฉ๋Ÿ‰

50ใŽฟ

50ใŽฟ

50ใŽฟ

50ใŽฟ

์ตœ๋Œ€์ ‘์†์šฉ๋Ÿ‰

(๊ธฐ์กด๋Œ€๋น„ ์ฆ๊ฐ€์œจ)

88.45ใŽฟ

(76.9%)

100.7ใŽฟ

(101.4%)

95ใŽฟ

(90.9%)

74.25ใŽฟ

(48.5%)

๊ณ ์žฅ๋ฐœ์ƒํ•˜์ง€ ์•Š์„ ๋•Œ

์—ฐ๊ฐ„ ์ถœ๋ ฅ์ œ์–ด๋Ÿ‰

์ œ์–ด ์—†์Œ

0.4%์ œ์–ด

0.3%์ œ์–ด

0.2% ์ œ์–ด

3. MLP ๋ชจ๋ธ์„ ์ด์šฉํ•œ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก

3.1 ์‹คํ—˜๋ฐ์ดํ„ฐ

ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰์„ ์˜ˆ์ธกํ•˜๊ธฐ ์œ„ํ•ด 1์‹œ๊ฐ„ ๋‹จ์œ„์˜ ์ผ์‚ฌ๋Ÿ‰ ๋ฐ์ดํ„ฐ์™€ ์ง€์—ญ์ •๋ณด, ์„ค๋น„์šฉ๋Ÿ‰์„ ์ž…๋ ฅ๋ฐ›์•„ ESS ์ถœ๋ ฅ์„ ํฌํ•จํ•œ 1์‹œ๊ฐ„ ๋‹จ์œ„์˜ ๋ฐœ์ „๋Ÿ‰์„ ์ถœ๋ ฅํ•˜๋Š” MLP ๋ชจ๋ธ์„ ๋งŒ๋“ค๊ณ  ์„ฑ๋Šฅ์„ ํ‰๊ฐ€ํ•˜์˜€๋‹ค. ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์„ ์˜ˆ์ธกํ•˜๊ธฐ ์œ„ํ•ด์„œ๋Š” ์ผ์‚ฌ๋Ÿ‰๊ณผ ๊ฐ™์€ ๊ธฐ์ƒ์˜ˆ์ธก ๋ฐ์ดํ„ฐ๋ฅผ ์ •ํ™•ํ•˜๊ฒŒ ์˜ˆ์ธกํ•˜๋Š” ๊ฒƒ์ด ์ค‘์š”ํ•˜๋‚˜ ๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ์ถฉ๋ฐฉ์ „ ํŒจํ„ด์„ ์˜ˆ์ธกํ•˜๋Š” ๊ฒƒ์— ์ค‘์ ์„ ๊ฐ–๊ณ  ์žˆ์–ด ๊ธฐ์ƒ ๋ฐ์ดํ„ฐ๋Š” ๋”ฐ๋กœ ์˜ˆ์ธกํ•˜์ง€ ์•Š๊ณ  Solcast์—์„œ ์ œ๊ณตํ•˜๋Š” ๋ฐ์ดํ„ฐ๋ฅผ ์‚ฌ์šฉํ•˜์˜€๋‹ค.

ํ‘œ 2 ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ์‹คํ—˜ ๋ฐ์ดํ„ฐ(๋‹จ์œ„:MW, ๊ฐœ)

Table 2 Experimental data of PV with ESS(unit:MW, EA)

์„ค๋น„๊ฐœ์ˆ˜

ํ‰๊ท ์šฉ๋Ÿ‰

ํ‘œ์ค€ํŽธ์ฐจ

์ตœ์†Œ๊ฐ’

์ตœ๋Œ€๊ฐ’

1,429

0.88

2.89

0.05

78.00

ํ‘œ 3 ์„ค๋น„์šฉ๋Ÿ‰์— ๋”ฐ๋ฅธ ๋ฐœ์ „์› ๊ฐœ์ˆ˜(๋‹จ์œ„:MW, ๊ฐœ)

Table 3 Number of PV based on Generation Capacity(unit:MW, EA)

GC <=0.1

0.1~ 0.5

0.5~

1.0

1.0~

2.0

2.0~

3.0

3.0~

80.0

486

383

337

140

194

25

์‹คํ—˜์—๋Š” 2023๋…„ ๊ธฐ์ค€ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์ด ๊ฐ€์žฅ ๋งŽ์•˜๋˜ 4์›” ํ•œ ๋‹ฌ ๋™์•ˆ์˜ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „์› 1,424๊ฐœ์˜ ์ถฉ๋ฐฉ์ „๋Ÿ‰์ด ํฌํ•จ๋œ ๋ฐœ์ „๋Ÿ‰ ๋ฐ์ดํ„ฐ(๋‹จ์œ„ MWh)์™€ ํ•ด๋‹น ์ง€์—ญ์˜ ์ˆ˜ํ‰๋ฉด ์ผ์‚ฌ๋Ÿ‰(GHI, Global Horizontal Irradiation) ๋ฐ์ดํ„ฐ(๋‹จ์œ„ W/m2), ์ง€์—ญ์ •๋ณด, ํƒœ์–‘๊ด‘ ๋ฐ ESS ์„ค๋น„์šฉ๋Ÿ‰์„ ์‚ฌ์šฉํ•˜์˜€๋‹ค. ์—ฐ๊ตฌ์— ์‚ฌ์šฉ๋œ ํƒœ์–‘๊ด‘ ๋ฐœ์ „์›์˜ ์„ค๋น„์˜ ํ‰๊ท ์šฉ๋Ÿ‰์€ 0.8MW์ด๋ฉฐ, ์„ค๋น„์šฉ๋Ÿ‰(GC, Generation Capacity)์— ๋”ฐ๋ฅธ ๋ฐœ์ „์› ๊ฐœ์ˆ˜๋Š” ํ‘œ 3๊ณผ ๊ฐ™๋‹ค.

3.2 ๋ฐ์ดํ„ฐ ์ „์ฒ˜๋ฆฌ

ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์€ ์ผ์‚ฌ๋Ÿ‰๊ณผ ๋†’์€ ์—ฐ๊ด€์„ฑ์„ ๊ฐ–๊ณ  ์žˆ์œผ๋ฏ€๋กœ, ์ •ํ™•ํ•œ ์‹คํ—˜์„ ์œ„ํ•ด ์ด 42,720๊ฐœ ๋ฐ์ดํ„ฐ ์ค‘์—์„œ ์ผ์ผ ์ตœ๋Œ€ ์ผ์‚ฌ๋Ÿ‰์ด 800W/m2๋ฅผ ์ดˆ๊ณผํ•˜๋Š” 22,346๊ฐœ์˜ ๋ฐ์ดํ„ฐ๋ฅผ ์ถ”์ถœํ•˜์—ฌ ์ตœ์†Œ๊ฐ’์ด 0์ด ๋˜๊ณ , ์ตœ๋Œ€๊ฐ’์ด 1์ด ๋˜๋„๋ก ์ •๊ทœํ™”๋ฅผ ์ˆ˜ํ–‰ํ•˜์˜€๋‹ค.

์ •ํ™•ํ•œ ์˜ˆ์ธก์„ ์œ„ํ•ด ์ผ์‚ฌ๋Ÿ‰ ์ „์ฒ˜๋ฆฌ๋ฅผ ํ†ตํ•ด ์ •์ œ๋œ ์ผ์ผ ๋ฐœ์ „๋Ÿ‰ ๋ฐ์ดํ„ฐ ์ค‘์—์„œ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์ด ๊ฐ–๋Š” ์ •์ƒ์ ์ธ ๋ฐœ์ „ํŒจํ„ด์„ ๋ณด์ด์ง€ ์•Š๋Š” ๋ฐ์ดํ„ฐ๋ฅผ ์‚ญ์ œํ•˜๋Š” ์ž‘์—…์„ ์ˆ˜ํ–‰ํ•˜์˜€๋‹ค. ๋ฐœ์ „๋Ÿ‰ ๋ฐ์ดํ„ฐ๋Š” ์ผ์ผ ๋ฐœ์ „๋Ÿ‰์˜ ์ตœ์†Œ๊ฐ’์ด 0์ด ๋˜๊ณ , ์ตœ๋Œ€๊ฐ’์ด 1์ด ๋˜๋„๋ก ์ •๊ทœํ™” ํ•˜์˜€๋‹ค. ์ •๊ทœํ™”๋œ ๋ฐ์ดํ„ฐ๋Š” ์ „์ฒ˜๋ฆฌ๋ฅผ ํ†ตํ•ด 6์‹œ์—์„œ 10์‹œ ์‚ฌ์ด์— ๋ฐœ์ „๋Ÿ‰์ด ์—†๊ฑฐ๋‚˜ 10์‹œ์—์„œ 4์‹œ ์‚ฌ์ด์— ESS ์ถฉ์ „์„ ํ•˜์ง€ ์•Š๋Š” ๊ฒฝ์šฐ๋ฅผ ์ œ๊ฑฐํ•˜์—ฌ ์‹คํ—˜์— ์‚ฌ์šฉ๋  ์ตœ์ข… 12,530๊ฐœ์˜ ๋ฐœ์ „๋Ÿ‰ ๋ฐ์ดํ„ฐ๋ฅผ ์–ป์—ˆ๋‹ค.

3.3 ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก

๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก์„ ์œ„ํ•ด ์ธ๊ณต์‹ ๊ฒฝ๋ง ๊ธฐ๋ฐ˜์˜ MLP ๋ชจ๋ธ์„ ์ด์šฉํ•˜์˜€๋‹ค. ์ž…๋ ฅ์ธต์€ 24๊ฐœ์˜ 1์‹œ๊ฐ„ ๋‹จ์œ„ ์ผ์ผ ์ผ์‚ฌ๋Ÿ‰ ๋ฐ์ดํ„ฐ์™€ ์ง€์—ญ์ •๋ณด, ํƒœ์–‘๊ด‘ ๋ฐ ESS ์„ค๋น„์šฉ๋Ÿ‰์œผ๋กœ ๊ตฌ์„ฑ๋œ 12,530๊ฐœ์˜ ๋ฐ์ดํ„ฐ๋ฅผ ์‚ฌ์šฉํ•˜์˜€๊ณ , ์ถœ๋ ฅ์ธต์€ 24๊ฐœ์˜ 1์‹œ๊ฐ„ ๋‹จ์œ„ ์ผ์ผ ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘ ๋ฐœ์ „๋Ÿ‰์„ ๊ฐ–๋„๋ก ๊ตฌ์„ฑํ•˜์˜€๋‹ค. MLP ๋ชจ๋ธ์˜ ํ›ˆ๋ จ์„ ์œ„ํ•ด ์ „์ฒด ๋ฐ์ดํ„ฐ์˜ 70%๋ฅผ ์‚ฌ์šฉํ•˜์˜€๊ณ , ์„ฑ๋Šฅ ๊ฒ€์ฆ์„ ์œ„ํ•ด 30%๋Š” ํ…Œ์ŠคํŠธ์šฉ์œผ๋กœ ์‚ฌ์šฉํ•˜์˜€๋‹ค. ์‹ ๊ฒฝ๋ง ์‹คํ—˜์„ ์œ„ํ•œ ๊ธฐ๋ณธ ๋ฐ˜๋ณตํšŸ์ˆ˜(epoch)๋Š” 100๋ฒˆ์œผ๋กœ ์„ค์ •ํ•˜์˜€๋‹ค.

๊ทธ๋ฆผ 5. MLP ๋ชจ๋ธ ๊ฐœ๋…๋„

Fig. 5. Perceptual Diagram of MLP Model

../../Resources/kiee/KIEE.2024.73.12.2180/fig5.png

์˜ˆ์ธก ์„ฑ๋Šฅ์„ ํ‰๊ฐ€ํ•˜๊ธฐ ์œ„ํ•œ ์†์‹คํ•จ์ˆ˜๋Š” MAE(Mean Absolute Error)๋ฅผ ์‚ฌ์šฉํ•˜์˜€๋‹ค. MAE๋Š” ํ‰๊ท  ์ ˆ๋Œ€ ์˜ค์ฐจ๋กœ ๊ด€์ธก๊ฐ’๊ณผ ์˜ˆ์ธก๊ฐ’์˜ ์ฐจ์ด๋ฅผ ์ ˆ๋Œ€๊ฐ’์œผ๋กœ ๋ณ€ํ™˜ํ•œ ๋’ค ํ•ฉ์‚ฐํ•˜์—ฌ ํ‰๊ท ์„ ๊ตฌํ•˜๋Š” ๋ฐฉ์‹์œผ๋กœ, ๊ฐ’์ด ๋‚ฎ์„์ˆ˜๋ก ์˜ˆ์ธก ์„ฑ๋Šฅ์ด ๋†’๊ฒŒ ๋œ๋‹ค.

MAE=1nโˆ‘ni=1|yiโˆ’^yi|(yi๊ด€์ธก๊ฐ’,^yi์˜ˆ์ธก๊ฐ’)

์€๋‹‰์ธต์— ์ž…๋ ฅ๋œ ๋ฐ์ดํ„ฐ์˜ ๊ฐ€์ค‘ ํ•ฉ์„ ์ถœ๋ ฅ ์‹ ํ˜ธ๋กœ ๋ณ€ํ™”ํ•˜๋Š” ํ™œ์„ฑํ™” ํ•จ์ˆ˜์˜ ์„ฑ๋Šฅ ๋น„๊ต๋ฅผ ์œ„ํ•ด ๊ฐ€์žฅ ์ผ๋ฐ˜์ ์œผ๋กœ ์‚ฌ์šฉ๋˜๋Š” [0,1]์˜ ๋ฒ”์œ„๋ฅผ ๊ฐ–๊ณ  ํ•™์Šต์†๋„๊ฐ€ ์ƒ๋Œ€์ ์œผ๋กœ ๋‚ฎ์€ logistic๊ณผ [-1,1]์˜ ๋ฒ”์œ„๋ฅผ ๊ฐ–๋Š” tanh(Hyperbolic Tangentn), ์„ ํ˜•์ ์ธ ํ˜•ํƒœ๋ฅผ ๊ฐ–๊ณ  ํ•™์Šต์†๋„๊ฐ€ ๋น ๋ฅธ relu(RectifiedLinearUnit)๋ฅผ ์‚ฌ์šฉํ•˜์˜€๋‹ค.

MLP์˜ ์ตœ์ ํ™” ์•Œ๊ณ ๋ฆฌ์ฆ˜์€ ์†์‹ค ํ•จ์ˆ˜๋ฅผ ์ตœ์†Œํ™”ํ•˜๊ธฐ ์œ„ํ•ด ๋…ธ๋“œ์˜ ๊ฐ€์ค‘์น˜๋ฅผ ๊ฐฑ์‹ ํ•˜๋Š” ๋ฐฉ๋ฒ•์œผ๋กœ ๊ฐ€์žฅ ์ผ๋ฐ˜์ ์ธ ๊ฒฝ์‚ฌํ•˜๊ฐ•๋ฒ•์ธ sgd(Stochastic Gradient Descent)์™€ ์ œํ•œ๋œ ๋ฉ”๋ชจ๋ฆฌ ๊ณต๊ฐ„์—์„œ ์†Œ๋Ÿ‰์˜ ๋ฐ์ดํ„ฐ๋ฅผ ์ฒ˜๋ฆฌํ•˜๋Š”๋ฐ ์ ํ•ฉํ•œ lbfgs(Limited-memory Broyden Fletcher Goldfarb Shanno), ๋Œ€๋Ÿ‰์˜ ๋ฐ์ดํ„ฐ์— ์ ํ•ฉํ•œ adam(Adaptive Moment Estimation)์„ ์‚ฌ์šฉํ•˜์˜€๋‹ค.

์˜ˆ์ธก์— ์ ํ•ฉํ•œ ์€๋‹‰์ธต์˜ ํฌ๊ธฐ๋ฅผ ๊ฒฐ์ •ํ•˜๊ธฐ ์œ„ํ•ด 1๊ฐœ์˜ ์€๋‹‰์ธต์„ ๊ฐ–๋Š” ๊ฒฝ์šฐ๋ฅผ ์‹คํ—˜ํ•˜์˜€๋‹ค. ๊ทธ๋ฆผ 6์€ ๋…ธ๋“œ์˜ ๊ฐœ์ˆ˜๋ฅผ 1๋ถ€ํ„ฐ 1000๊นŒ์ง€ 100๊ฐœ์”ฉ ์ฆ๊ฐ€์‹œํ‚ค๋ฉด์„œ ์ธก์ •ํ•œ ์˜ˆ์ธก ์„ฑ๋Šฅ๊ณผ ์—ฐ์‚ฐ์‹œ๊ฐ„์„ ๋‚˜ํƒ€๋‚ธ๋‹ค. ์˜ˆ์ธก ์„ฑ๋Šฅ์„ ๋‚˜ํƒ€๋‚ด๋Š” MAE์˜ ๊ฒฝ์šฐ์—๋Š” ์ตœ์ ํ™” ์•Œ๊ณ ๋ฆฌ์ฆ˜์œผ๋กœ sgd๋ฅผ ์‚ฌ์šฉํ•  ๋•Œ ๋‚ฎ์€ ์„ฑ๋Šฅ์„ ๋ณด์ด๋ฉฐ, ์—ฐ์‚ฐ์‹œ๊ฐ„์˜ ๊ฒฝ์šฐ์—๋Š” ์ ์€ ๋ฉ”๋ชจ๋ฆฌ๋ฅผ ์‚ฌ์šฉํ•˜๋Š” lbfgs ๋ฐฉ์‹์ด ์˜ค๋ž˜ ๊ฑธ๋ฆฌ๋Š” ๊ฒƒ์„ ์•Œ ์ˆ˜ ์žˆ๋‹ค.

๊ทธ๋ฆผ 6. 1๊ฐœ์˜ ์€๋‹‰์ธต์„ ๊ฐ–๋Š” ๊ฒฝ์šฐ์˜ MAE ๋ฐ ์—ฐ์‚ฐ์‹œ๊ฐ„

Fig. 6. MAE and computation time in case of 1 hidden layer

../../Resources/kiee/KIEE.2024.73.12.2180/fig6.png

๋‹ค์ธต์˜ ์€๋‹‰์ธต์„ ๊ฐ–๋Š” ๊ฒฝ์šฐ์— ๋Œ€ํ•œ ์„ฑ๋Šฅ ๋น„๊ต๋ฅผ ์œ„ํ•ด ์˜ˆ์ธก ์„ฑ๋Šฅ์ด ๋‚ฎ์€ ์ตœ์ ํ™” ์•Œ๊ณ ๋ฆฌ์ฆ˜์ธ sgd์™€ ์—ฐ์‚ฐ์‹œ๊ฐ„์ด ์˜ค๋ž˜ ๊ฑธ๋ฆฌ๋Š” lbfgs๋ฅผ ์ œ์™ธํ•œ adam๋งŒ์„ ์‚ฌ์šฉํ•˜์—ฌ [n, n/2] ๊ฐœ์˜ ๋…ธ๋“œ๋ฅผ ๊ฐ–๋Š” 2๊ณ„์ธต ๊ตฌ์กฐ์™€ [n, n/2, n/4] ๊ฐœ์˜ ๋…ธ๋“œ๋ฅผ ๊ฐ–๋Š” 3๊ณ„์ธต ๊ตฌ์กฐ๋ฅผ ์‹คํ—˜ํ•˜์˜€๊ณ  ๊ฒฐ๊ณผ๋Š” ๊ทธ๋ฆผ 7๊ณผ ๊ฐ™๋‹ค. ๊ทธ๋ž˜ํ”„๋ฅผ ์‚ดํŽด๋ณด๋ฉด 2๊ณ„์ธต๊ณผ 3๊ณ„์ธต์„ ์‚ฌ์šฉํ•œ ๊ฒฝ์šฐ ๋ชจ๋‘๋‹ค ํ™œ์„ฑํ™” ํ•จ์ˆ˜๋กœ relu(์ดˆ๋ก์„ )๋ฅผ ์‚ฌ์šฉํ•œ ๊ฒฝ์šฐ์— ์„ฑ๋Šฅ์ด ์ข‹์€ ๊ฒƒ์„ ์•Œ ์ˆ˜ ์žˆ๋‹ค.

๊ทธ๋ฆผ 7. ๋‹ค์ธต์˜ ์€๋‹‰์ธต์„ ๊ฐ–๋Š” ๊ฒฝ์šฐ์˜ MAE

Fig. 7. MAE in case of multiple hidden layer

../../Resources/kiee/KIEE.2024.73.12.2180/fig7.png

ํ‘œ 4 relu์™€ adam์„ ์‚ฌ์šฉํ•œ ๊ฒฝ์šฐ์˜ MAE

Table 4 MAE in case of relu and adam

2๊ฐœ์˜ ์€๋‹‰์ธต

3๊ฐœ์˜ ์€๋‹‰์ธต

[700,350]

[800,400]

[900,450]

[700,350,175]

[800,400,200]

[900,450,225]

MAE

0.1184

0.1121

0.1175

0.1138

0.1107

0.1134

๊ทธ๋ฆผ 8. ์ตœ์†Œ, ํ‰๊ท , ์ตœ๋Œ€ ์˜ค์ฐจ๋ฅผ ๊ฐ–๋Š” ์˜ˆ์ธก ์‚ฌ๋ก€

Fig. 8. Prediction cases with minimum, average, and maximum errors

../../Resources/kiee/KIEE.2024.73.12.2180/fig8.png

๊ทธ๋ฆผ 8์€ ๋ณธ ์‹คํ—˜์„ ํ†ตํ•ด ์–ป์€ ํ•™์Šต ํŒŒ๋ผ๋ฏธํ„ฐ๋ฅผ ์ ์šฉํ•œ ์ตœ์†Œ ์˜ค์ฐจ์™€ ํ‰๊ท  ์˜ค์ฐจ, ์ตœ๋Œ€ ์˜ค์ฐจ๋ฅผ ๊ฐ–๋Š” ๊ฒฝ์šฐ์˜ ์‹ค์ œ ๋ฐœ์ „๋Ÿ‰(๊ฐ€๋Š”์„ )๊ณผ ์˜ˆ์ธก ๋ฐœ์ „๋Ÿ‰(๊ตต์€์„ )์˜ ์‚ฌ๋ก€๋ฅผ ๋ณด์—ฌ์ค€๋‹ค. ๊ทธ๋ฆผ์—์„œ ์•Œ ์ˆ˜ ์žˆ๋“ฏ์ด ESS๋ฅผ ์ถฉ์ „ํ•˜๋Š” 10์‹œ๋ถ€ํ„ฐ 16์‹œ๊นŒ์ง€๋Š” ์ผ์‚ฌ๋Ÿ‰์— ๋น„๋ก€ํ•˜์—ฌ ์ถฉ์ „ํ•˜๊ฒŒ ๋˜์–ด ๋น„๊ต์  ์˜ˆ์ธก ์˜ค์ฐจ๊ฐ€ ์ ์œผ๋‚˜, ESS๋ฅผ ๋ฐฉ์ „ํ•˜๋Š” 16์‹œ ์ดํ›„๋ถ€ํ„ฐ๋Š” ๋ฐœ์ „์›์˜ ๊ฒฝ์ œ์„ฑ์„ ๊ณ ๋ คํ•œ ์šด์˜๋ฐฉ์‹์— ๋”ฐ๋ผ ์˜ˆ์ธก ์˜ค์ฐจ๊ฐ€ ํฌ๊ฒŒ ๋‚˜ํƒ€๋‚˜๊ณ  ์žˆ๋‹ค. ๋”ฐ๋ผ์„œ ํ•ญํ›„์—๋Š” ESS ๋ฐฉ์ „๋Ÿ‰์„ ์˜ˆ์ธกํ•˜๊ธฐ ์œ„ํ•ด ํ•„์š”ํ•œ ๋ฐ์ดํ„ฐ๋“ค์„ ์ถ”๊ฐ€์ ์œผ๋กœ ์กฐ์‚ฌํ•˜๊ณ  ์‹คํ—˜์— ๋ฐ˜์˜ํ•˜์—ฌ ์˜ˆ์ธก ์„ฑ๋Šฅ์„ ๋†’์ผ ์ˆ˜ ์žˆ๋„๋ก ๋…ธ๋ ฅํ•  ์˜ˆ์ •์ด๋‹ค.

4. ๊ฒฐ ๋ก 

๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ESS ์—ฐ๊ณ„ ํƒœ์–‘๊ด‘์˜ ๋ฐœ์ „๋Ÿ‰ ์˜ˆ์ธก์„ ์œ„ํ•ด ์ผ์‚ฌ๋Ÿ‰ ๋ฐ์ดํ„ฐ๋ฅผ ์ž…๋ ฅ์œผ๋กœ ํ•˜๊ณ , ๋ฐœ์ „๋Ÿ‰์„ ์ถœ๋ ฅ์œผ๋กœ ํ•˜๋Š” MLP ๊ธฐ๋ฐ˜์˜ ์˜ˆ์ธก ๋ชจ๋ธ์„ ์‚ฌ์šฉํ•˜์˜€๋‹ค. ๋ณธ ์‹คํ—˜์„ ํ†ตํ•ด ์†์‹คํ•จ์ˆ˜๋กœ MAE๋ฅผ ์‚ฌ์šฉํ•  ๋•Œ, [800, 400, 200]๊ฐœ์˜ ๋…ธ๋“œ๋กœ ๊ตฌ์„ฑ๋œ 3๊ฐœ์˜ ์€๋‹‰์ธต์„ ์‚ฌ์šฉํ•˜๊ณ , ํ™œ์„ฑํ™” ํ•จ์ˆ˜๋Š” relu๋ฅผ, ์ตœ์ ํ™” ์•Œ๊ณ ๋ฆฌ์ฆ˜ adam์„ ์ด์šฉํ•˜๋Š” ๊ฒฝ์šฐ๊ฐ€ ์ตœ์ ์ธ ๊ฒƒ์œผ๋กœ ๋‚˜ํƒ€๋‚ฌ๋‹ค.

๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ์ธ๊ณต์‹ ๊ฒฝ๋ง ๊ธฐ๋ฐ˜์˜ MLP ๋ชจ๋ธ๋งŒ์„ ์‚ฌ์šฉํ•˜์—ฌ ์‹คํ—˜์„ ํ•˜์˜€์œผ๋‚˜, ์ถ”๊ฐ€์ ์œผ๋กœ XGBoost๋‚˜ LightGBM ๋“ฑ๊ณผ ๊ฐ™์€ ๋‹ค์–‘ํ•œ ์ธ๊ณต์ง€๋Šฅ ๋ชจ๋ธ์„ ํ™œ์šฉํ•˜์—ฌ ์˜ˆ์ธก ์ •ํ™•๋„๋ฅผ ๋†’์ด๋Š” ์‹คํ—˜์„ ๊ณ„์†ํ•ด ๋‚˜๊ฐˆ ๊ณ„ํš์ด๋‹ค. ๋˜ํ•œ ๊ฐœ๋ณ„ ๋ฐœ์ „์› ๋ณ„๋กœ ์˜ˆ์ธกํ•˜๋Š” ๋ฐฉ์‹์€ ์ „์ฒด ๋ฐœ์ „์›์˜ ํŒจํ„ด์„ ์˜ˆ์ธกํ•˜๋Š”๋ฐ ๋งŽ์€ ์ž์›์ด ์†Œ์š”๋˜๋ฏ€๋กœ, ์ง€์—ญ์ •๋ณด๋ฅผ ์ด์šฉํ•˜์—ฌ ๊ตฐ์ง‘์œผ๋กœ ๋ฌถ์–ด ๋Œ€ํ‘œ ๋ฐœ์ „ํŒจํ„ด์„ ์ƒ์„ฑํ•˜์—ฌ ์˜ˆ์ธกํ•˜๋Š” ๋ฐฉ์‹๋„ ์—ฐ๊ตฌํ•ด ๋‚˜๊ฐˆ ๊ณ„ํš์ด๋‹ค.

Acknowledgements

This paper presents the research findings of the โ€œDevelopment of Real-time Data Platform and Flexible Interconnection Operating System on Renewable Energyโ€ project, which has been conducted since 2022 as an in-house project of the Korea Electric Power Corporation (KEPCO).

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์ €์ž์†Œ๊ฐœ

๊น€์˜์ผ(Young-Il Kim)
../../Resources/kiee/KIEE.2024.73.12.2180/au1.png

He received his Ph.D. degree in computer engineering from Chungnam National University, Daejeon, Korea in 2012.

He is currently General Manager of Energy Solution Team at KEPCO Research Institute, Korea.

์ด์ข…์šฑ(Jong-Uk Lee)
../../Resources/kiee/KIEE.2024.73.12.2180/au2.png

He received his Master degree in electricity power system from Korea University, Seoul, Korea in 2012.

He is currently Senior Manager of Energy Solution Team at KEPCO Research Institute, Korea.

๋…ธ์žฌ๊ตฌ(Jae-Koo Noh)
../../Resources/kiee/KIEE.2024.73.12.2180/au3.png

He received his M.S. degree in computer engineering from Chungnam National University, Daejeon, Korea in 2018.

He is currently Senior Researcher of Energy Solution Team at KEPCO Research Institute, Korea.

๊น€์˜ˆ๋ฆฌ(Ye-Ri Kim)
../../Resources/kiee/KIEE.2024.73.12.2180/au4.png

She received her M.S. degree in computer engineering from Chungnam National University, Daejeon, Korea in 2023.

She is currently Research Engineer of Energy Solution Team at KEPCO Research Institute, Korea.